USPatent applicationPatented

Antibacterial agents

Granted 27 Dec 2011 · 4 office actions

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Abstract

Antibacterial compounds of formula I are provided: [structure] As well as stereoisomers, pharmaceutically acceptable salts, esters, and prodrugs thereof; pharmaceutical compositions comprising such compounds; methods of treating bacterial infections by the administration of such compounds; and processes for the preparation of the compounds.

Description

55 parts
›This application is a continuation of U.S. patent…

This application is a continuation of U.S. patent application Ser. No. 11/187,708, filed Jul. 22, 2005, which is a continuation of U.S. patent application Ser. No. 10/754,928, filed Jan. 8, 2004, now abandoned, which claims the benefit of U.S. Provisional Patent Application Ser. Nos. 60/438,523, filed Jan. 8, 2003; 60/466,974, filed Apr. 30, 2003; and 60/520,211, filed Nov. 13, 2003; each of which is hereby incorporated by reference in its entirety.

›FIELD OF THE INVENTION

This invention pertains generally to treating infections caused by gram-negative bacteria. More specifically, the invention described herein pertains to treating gram-negative infections by inhibiting activity of UDP-3-O—(R-3-hydroxydecanoyl)-N-acetylglucosamine deacetylase (LpxC). The present invention provides small molecule inhibitors of LpxC, pharmaceutical formulations containing such inhibitors, methods of treating patients with such pharmaceutical formulations, and to methods of preparing such pharmaceutical formulations and inhibitors. The inhibitors can be used to treat Gram-negative infections of patients alone and in combination with other antibacterials.

›BACKGROUND OF THE INVENTION · 1 of 2

Over the past several decades, the frequency of antimicrobial resistance and its association with serious infectious diseases have increased at alarming rates. The increasing prevalence of resistance among nosocomial pathogens is particularly disconcerting. Of the over 2 million nosocomial infections occurring each year in the United States, 50 to 60% are caused by antimicrobial-resistant strains of bacteria. This high rate of resistance increases the morbidity, mortality, and costs associated with nosocomial infections. In the United States, nosocomial infections are thought to contribute to or cause more than 77,000 deaths per year and cost approximately $5 to $10 billion annually. Among Gram-positive organisms, the most important resistant pathogens are methicillin-(oxacillin-) resistant Staphylococcus aureus , β-lactam-resistant and multidrug-resistant pneumococci, and vancomycin-resistant enterococci. Important causes of Gram-negative resistance include extended-spectrum β-lactamases (ESBLs) in Klebsiella pneumoniae, Escherichia coli , and Proteus mirabilis , high-level third-generation cephalosporin (Amp C) β-lactamase resistance among Enterobacter species and Citrobacter freundii , and multidrug-resistance genes observed in Pseudomonas aeruginosa, Acinetobacter , and Stenotrophomonas maltophilia . (Jones R N 2001 Chest 119 (supplement), 397S-404S: Resistance patterns among nosocomial pathogens: Trends over the past few years).

The problem of antibacterial resistance is compounded by the existence of bacterial strains resistant to multiple antibacterials. For example, Pseudomonas aeruginosa isolates resistant to fluoroquinolones are virtually all resistant to additional antibacterials (Sahm D F et al 2001 Antimicrobial Agents and Chemotherapy 45, 267-274: Evaluation of current activities of fluoroquinolones against gram-negative bacilli using centralized in vitro testing and electronic surveillance).

Thus there is a need for new antibacterials, particularly antibacterials with novel mechanisms of action. Most of the antibacterial discovery effort in the pharmaceutical industry is aimed at development of drugs effective against gram-positive bacteria. However, there is also a need for new gram-negative antibacterials. Gram-negative bacteria are in general more resistant to a large number of antibacterials and chemotherapeutic agents than are gram-positive bacteria. A survey of recently reported antibacterials of natural origin showed that over 90% lacked activity against Escherichia coli , although they were active against gram-positive bacteria. The outer membrane of gram-negative bacteria contributes to this intrinsic resistance by acting as an efficient permeability barrier, because the narrow porin channels limit the penetration of hydrophilic solutes and the low fluidity of the lipopolysaccharide leaflet slows down the inward diffusion of lipophilic solutes. A second mechanism contributes to the intrinsic resistance of gram-negative bacteria. Recent studies showed that multiple drug efflux pumps, sometimes with unusually broad specificity, act as this second factor to create the general intrinsic resistance of gram-negative bacteria. When their expression levels are elevated as a consequence of physiological regulation or genetic alteration, they can frequently produce impressive levels of resistance to a wide variety of antimicrobial agents. (Nikaido H 1998 Clinical Infectious Diseases 27 (Suppl 1), S32-41; Antibacterial resistance caused by gram-negative multidrug efflux pumps).

Historically, most development of antimicrobial agents has been relatively empirical. Active compounds have generally been found via screening soil, sewage, water, and other natural substances to detect antimicrobial-producing organisms, or by screening various chemical compounds. Once a leading candidate has been found and its chemical structure determined, a series of analogs is made to identify an optimal compound for further clinical development. A more rational approach involves the defining of new targets, such as genes or enzymatic functions, responsible for a crucial cellular essential activity. Once this has been done, inhibitors or blockers of the function or gene product can be developed.

In order to identify potential targets for novel gram-negative antibacterial agents, studies aimed at identifying all essential and important genes in Pseudomonas aeruginosa have been performed. Among the essential genes identified was lpxC, that encodes the enzyme uridyldiphospho-3-O—(R-hydroxydecanoyl)-N-acetylglucosamine deacetylase (LpxC). This enzyme is the first committed step in the synthesis of lipid A, the lipid moiety of lipopolysaccharide, that is an essential component of all gram-negative bacteria. It therefore is an attractive target for novel antibacterials. In order to be useful as antibacterial agents, LpxC inhibitors would not only have to inhibit the enzymatic activity of LpxC from a variety of bacteria, but would have to defeat the intrinsic resistance mechanisms of gram-negative bacteria, as described above: they would have to penetrate the outer membrane and be relatively unsusceptible to multidrug efflux pumps.

Researchers have identified a few compounds with antibacterial activity that target lipid A biosynthesis. WO 97/42179 to Patchett et al. discloses compounds of the formula:

The compounds possess activity against certain gram-negative organisms, for example Escherichia coli , but are not active against other medically important gram-negative bacteria, for example Pseudomonas aeruginosa . Subsequent studies have found mat the primary reason for their inactivity against particular, medically important gram-negative bacteria is their poor ability to inhibit P. aeruginosa LpxC; efflux by the major multidrug efflux pump or inability to penetrate the outer membrane were not the critical factors.

Jackman et al., in J. Biol. Chem. (vol. 275, no. 15, Apr. 14, 2000, pps. 11002-11009), discuss the mechanism of lipid A biosynthesis in the context of gram-negative bacteria and discloses a new class of hydroxamate-containing inhibitors of LpxC. Wyckoff et al., in Trends in Microbiology (vol. 6, no. 4, April 1998, pps, 154-159), discuss the role of LpxC in lipid A biosynthesis and its role in regulation. Wyckoff et al. disclose a few oxazoline hydroxamic acids that inhibit bacterial growth. However, Wyckoff et al. also discuss the shortcomings of the available deacetylase inhibitors as bactericidal agents against Pseudomonas and that more work is needed to be done in the area.

›BACKGROUND OF THE INVENTION · 2 of 2

Thus, an increasing need exists for LpxC inhibitors that have activity as bactericidal agents against gram-negative bacteria. It is, accordingly, an object, of this invention to provide compounds and combinations of such compounds for use in the preparation of antibacterials and other pharmaceuticals capable of inhibiting Gram-negative bacterial infections.

U.S. Patent Publication No. 2001/0053555 (U.S. patent application Ser. No. 08/958,638) published Dec. 20, 2001, corresponding to WO 98/18754 published May 7, 1998 discloses a combinatorial library of hydroxylamine, hydroxamic acid, hydroxyurea and hydroxylsulfonamide compounds purported to be potentially useful as inhibitors of metalloproteases. U.S. Pat. No. 6,281,245, a continuation in part of U.S. Ser. No. 08/958,638 claims a method of inhibiting a deformylase enzyme by administering one of the hydroxylamine compounds from the combinatorial library as disclosed in U.S. Patent Publication No. 2001/0053555 and the corresponding WO 98/18754. Related to the above disclosed patent publications is WO 99/57097, published Nov. 11, 1999, that discloses a method of solid phase synthesis of the hydroxylamine library of compounds. WO 00/61134 (to British Biotech Pharmaceuticals limited), published Oct. 19, 2000, discloses compounds of the formula below:

The compounds are useful as antimicrobial agents that are believed to have bactericidal activity at least in part to intracellular inhibition of bacterial polypeptide deformylase.

In an earlier to British Biotech Pharmaceuticals Limited, WO 99/39704, published Aug. 12, 1999, compounds of the formula below are disclosed:

The compounds are useful as antimicrobial agents useful against gram-negative and gram positive bacteria.

Recently, De Novo Pharmaceuticals LTD disclosed in WO 02/50081, published Jun. 27, 2002, antibacterial and antiprotozoal agents having the formulae shown below:

The patent publication discusses that the antibacterial activity is due, at least in part, to intracellular inhibition of bacterial polypeptide deformylase.

›SUMMARY OF THE INVENTION · 1 of 2

The present invention provides novel compounds, pharmaceutical formulations including the compounds, methods of inhibiting UDP-3-O—(R-3-hydroxydecanoyl)-N-acetylglucosamine deacetylase (LpxC), and methods of treating gram-negative bacterial infections.

In one embodiment, the present invention provides compounds of formula I:

or stereoisomers, pharmaceutically acceptable salts, esters, and prodrugs thereof, wherein E is absent or selected from the group consisting of

(1) H,

(2) substituted or unsubstituted C 1 -C 6 -alkyl,

(3) substituted or unsubstituted C 2 -C 6 -alkenyl,

(4) substituted or unsubstituted C 2 -C 6 -alkynyl,

(5) substituted or unsubstituted aryl,

(6) substituted or unsubstituted heterocyclyl, and

(7) substituted or unsubstituted heteroaryl;

L is absent or selected from the group consisting of

(1) substituted or unsubstituted C 1 -C 6 -alkyl,

(2) —(NH) 0-1 —(CH 2 ) j —NR 3L —(CH 2 ) k —,

(3) —(NH) 0-1 —C(R 1L ,R 2L )—NR 3L —C(R 1L ,R 2L )—,

(4) —C(R 1L ,R 2L )—O—C(R 1L ,R 2L )—,

(5) —(CH 2 ) j —NR 3L —C(R 1L ,R 2L )—CONH—(CH 2 ) k —,

(6) —CO—C(R 1L ,R 2L )—NHCO—,

(7) —CONH—,

(8) —NHCO—,

wherein

R 1L ,R 2L , and R 3L are independently selected from the group consisting of

(a) H, (b) substituted or unsubstituted C 1 -C 6 -alkyl, (c) C 1 -C 6 -alkyl substituted with aryl, (d) C 1 -C 6 -alkyl substituted with heterocyclyl, and (e) C 1 -C 6 -alkyl substituted with heteroaryl, or R 1L and R 3L , together with the atoms to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 3 to 8 ring atoms, wherein 1-2 ring atoms of the heterocyclic ring system are selected from N, O and S;

j is an integer of 0-4;

k is an integer of 0-4;

D is absent or selected from the group consisting of

(1) substituted or unsubstituted C 3 -C 8 -cycloalkyl,

(2) substituted or unsubstituted aryl,

(3) substituted or unsubstituted heterocyclyl, and

(4) substituted or unsubstituted heteroaryl;

G is absent or selected from the group consisting of

(1) —(CH 2 ) i —O—(CH 2 ) i —,

(2) —(CH 2 ) i —S—(CH 2 ) i —,

(3) —(CH 2 ) i —NR g —(CH 2 ) i —,

(4) —C(═O)—,

(5) —NHC(═O)—,

(6) —C(═O)NH—,

(7) —(CH 2 ) i NHCH 2 (═O)NH—,

(8) —C≡C—,

(9) —C≡C—C≡C—, and

(10) —C═C—;

wherein

Rg is H or substituted or unsubstituted C 1 -C 6 -alkyl,

i is an integer of 0-4;

Y is selected from the group consisting of

(1) substituted or unsubstituted C 3 -C 8 -cycloalkyl,

(2) substituted or unsubstituted aryl,

(3) substituted or unsubstituted heterocyclyl, and

(4) substituted or unsubstituted heteroaryl;

X is selected from the group consisting of

(1) —(C═O)—,

(2) —C 1 -C 6 -alkyl-(C═O)—,

(3) —C 2 -C 6 -alkenyl-(C═O)—,

(4) —C 2 -C 6 -alkynyl-(C═O)—, and

(5) —CH 2 —;

or when B is absent, X and A, together with the atoms to which they are attached can form a heterocyclic ring, having from 5 to 8 ring atoms, wherein 1-2 ring atoms of the heterocyclic ring system are selected from N, O and S;

B is a absent or

wherein R 1b and R 2b , are independently selected from the group consisting of

(a) H, (b) substituted or unsubstituted C 1 -C 6 -alkyl, (c) substituted or unsubstituted C 2 -C 6 -alkenyl, (d) substituted or unsubstituted C 2 -C 6 -alkynyl, (e) substituted or unsubstituted aryl, (f) substituted or unsubstituted heterocyclyl, (g) substituted or unsubstituted heteroaryl, (h) C 1 -C 6 -alkyl substituted with aryl, (i) C 1 -C 6 -alkyl substituted with heterocyclyl, and (j) C 1 -C 6 -alkyl substituted with heteroaryl, or R 1b and R 2b , together with the atoms to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 5 to 8 ring atoms, wherein 1-2 ring atoms of the heterocyclic ring system are selected from N, O and S;

q is an integer of 0-4;

R 3 is H or substituted or unsubstituted C 1 -C 6 -alkyl,

or R 3 and A together with the atoms to which they are attached can form a substituted or unsubstituted 3-10 membered cycloalkyl or a heterocyclic ring system, wherein the heterocyclic ring system may have from 3 to 10 ring atoms, with 1 to 2 rings being in the ring system and contain from 1-4 heteroatoms selected from N, O and S;

R 4 is H or substituted or unsubstituted C 1 -C 6 -alkyl,

or R 4 and A, together with the atoms to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 3 to 8 ring atoms, wherein 1-2 ring atoms of the heterocyclic ring system are selected from N, O and S;

n is an integer of 0-6;

A is selected from the group consisting of

(1) H,

(2) —(CH 2 ) r C(R 1a ,R 2a )(CH 2 ) 5 OR 3a ,

(3) —(CH 2 ) r C(R 1a ,R 2a )N(R 4a ,R 5a ),

(4) —(CH 2 ) r C(R 1a ,R 2a )N(R 4a )COR 3a ,

(5) —(CH 2 ) r C(R 1a ,R 2a )NHCON(R 4a ,R 5a ),

(6) —(CH 2 ) r C(R 1a ,R 2a )NHC(═NH)N(R 4a ,R 5a ),

(7) —CH(R 1a ,R 2a ),

(8) —C≡CH,

(9) —(CH 2 ) r C(R 1a ,R 2a )CN,

(10) —(CH 2 ) r C(R 1a ,R 2a )CO 2 R 3a , and

(11) —(CH 2 ) r C(R 1a ,R 2a )CON(R 4a ,R 5a ),

wherein R 1a ,R 2a , R 3a , R 4a , and R 5a are independently selected from the group consisting of

(a) H, (b) substituted or unsubstituted C 1 -C 6 -alkyl, (c) substituted or unsubstituted aryl, (d) substituted or unsubstituted heterocyclyl, (e) substituted or unsubstituted heteroaryl, (f) C 1 -C 6 -alkyl substituted with aryl, (g) C 1 -C 6 -alkyl substituted with heterocyclyl, and (h) C 1 -C 6 -alkyl substituted with heteroaryl, or R 4a and R 5a together with the N atom to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 5 to 8 ring atoms, wherein 1-2 ring atoms of the heterocyclic ring system are selected from N, O and S;

r is an integer of 0-4;

s is an integer of 0-4;

Q is absent or selected from the group consisting of

(1) —C(═O)N(R 1 ,R 2 ),

(2) —NHC(═O)N(R 1 ,R 2 ),

(3) —N(OH)C(═O)N(R 1 ,R 2 ),

(4) —CH(OH)C(═O)N(R 1 ,R 2 ),

(5) —CH[N(R 2q , R 3q )]C(═O)N(R 1 ,R 2 ),

(6) —CHR 1q C(═O)N(R 1 ,R 2 ),

(7) —CO 2 H,

(8) —C(═O)NHSO 2 R 4q ,

(9) —SO 2 NH 2 ,

(10) —N(OH)C(═O)R 1q ,

(11) —N(OH)SO 2 R 4q ,

(12) —NHSO 2 R 4q ,

(13) —SH,

(14) —CH(SH)(CH) 2 ) 0-1 C(═O)N(R 1 ,R 2 ),

(15) —CH(SH)(CH 2 ) 0-1 CO 2 H,

(16) —CH(OH)(CH 2 ) 0-1 CO 2 H,

(17) —CH(SH)CH 2 CO 2 R 1q ,

›SUMMARY OF THE INVENTION · 2 of 2

(18) —CH(OH)(CH 2 )SO 2 NH 2 ,

(19) —CH(CH 2 SH)NHCOR 1q ,

(20) —CH(CH 2 SH)NHSO 2 R 4q ,

(21) —CH(CH 2 SR 5q )CO 2 H,

(22) —CH(CH 2 SH)NHSO 2 NH 2 ,

(23) —CH(CH 2 OH)CO 2 H,

(24) —CH(CH 2 OH)NHSO 2 NH 2 ,

(25) —C(═O)CH 2 CO 2 H,

(26) —C(═O)(CH 2 ) 0-1 CONH 2 ,

(27) —OSO 2 NHR 5q ,

(28) —SO 2 NHNH 2 ,

(29) —P(═O)(OH) 2 ,

wherein

R 1 is selected from the group consisting of

(1) H, (2) —OH, (3) —OC 1-6 -alkyl, (4) —N(R 2q ,R 3q ), and (5) substituted or unsubstituted C 1-6 -alkyl;

R 2 is selected from the group consisting of

(1) H, (2) substituted or unsubstituted C 1 -C 6 -alkyl, (3) substituted or unsubstituted C 2 -C 6 -alkenyl, (4) substituted or unsubstituted C 2 -C 6 -alkenyl, (5) substituted or unsubstituted aryl, (6) substituted or unsubstituted heterocyclyl, (7) substituted or unsubstituted heteroaryl, (8) C 1 -C 6 -alkyl substituted with aryl, (9) C 1 -C 6 -alkyl substituted with heterocyclyl, and (10) C 1 -C 6 -alkyl substituted with heteroaryl, or R 1 and R 2 , together with the N atom to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 3 to 10 ring atoms, wherein 1-4 ring atoms of the heterocyclic ring system are selected from N, O and S; or R 2 and R 4 , together with the N atoms to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 3 to 10 ring atoms, wherein 1-4 ring atoms of the heterocyclic ring system are selected from N, O and S;

R 1q , R 2q , R 3q , R 4q , and R 5q are selected from H or C 1 -C 6 -alkyl,

wherein B is absent, or E, L, G, and B are absent, or E, L, and G are absent, or E, L, and B are absent, or E, L, D, G, and B are absent.

In one aspect, the invention provides a method of inhibiting a deacetylase enzyme in a gram-negative bacteria, thereby affecting bacterial growth, comprising administering to a patient in need of such inhibition a compound of formula I.

In another aspect, the invention provides a method of inhibiting LpxC, thereby modulating the virulence of a bacterial infection, comprising administering to a patient in need of such inhibition a compound of formula I.

In another aspect, the invention provides a method for treating a subject with a gram-negative bacterial infection comprising administering to the subject in need thereof an antibacterially effective amount of a compound of formula I with a pharmaceutically acceptable carrier. In a preferred embodiment of the method of treatment, the subject is a mammal and in some embodiments, a human.

In another aspect, the invention provides a method of administering an inhibitory amount of a compound of formula I to fermentative or non-fermentative gram-negative bacteria. In a preferred embodiment of the method of administering an inhibitory amount of a compound of formula I to fermentative or non-fermentative gram-negative bacteria, the gram-negative bacteria are selected from the group consisting of Pseudomonas aeruginosa, Stenotrophomonas maltophila, Burkholderia cepacia, Alcaligenes xylosoxidans, Acinetobacter , Enterobacteriaceae, Haemophilus , and Neisseria species.

In another embodiment, the invention provides a method of administering an inhibitory amount of a compound of formula I to gram-negative bacteria, such as Enterobacteriaceae which is selected from the group consisting of organisms such as Serratia, Proteus, Klebsiella, Enterobacter, Citrobacter, Salmonella, Providencia, Morganella, Cedecea , and Edwardsiella species and Escherichia coli.

Another embodiment of the invention provides a pharmaceutical composition comprising an effective amount of a compound of Formula I with a pharmaceutically acceptable carrier thereof.

Pharmaceutical formulations according to the present invention are provided which include any of the compounds described above in combination with a pharmaceutically acceptable carrier.

Another embodiment of the invention provides a method of co-administering the compound of formula I with other therapeutic agents that are selected for their particular usefulness against the condition that is being treated.

For example, the compound of formula I is useful in combination with other anti-bacterial agents. The compound of formula I augments the sensitivity of gram-negative bacteria to existing classes of antibacterials. Combinations of the presently disclosed compounds with other anti-bacterial agents are within the scope of the invention. Such anti-bacterial agents include, but are not limited to, erythromycin, rifampicin, Nalidixic acid, carbenicillin, bacitracin, cycloserine, fosfomycin, and vancomycin.

›DETAILED DESCRIPTION · 1 of 15

The present invention provides novel compounds, methods for inhibiting LpxC in gram-negative bacteria, and novel methods for treating bacterial infections. The compounds provided herein can be formulated into pharmaceutical formulations and medicaments that are useful in the methods of the invention. The invention also provides for the use of the compounds in preparing medicaments and pharmaceutical formulations, for use of the compounds in inhibiting LpxC, and for use of the compounds in treating bacterial infections in a subject.

The following abbreviations and definitions are used throughout this application:

“LpxC” is an abbreviation that stands for UDP-3-O—(R-3-hydroxydecanoyl)-N-acetylglucosamine deacetylase.

Generally, reference to a certain element such as hydrogen or H is meant to include all isotopes of that element. For example, if an R group is defined to include hydrogen or H, it also includes deuterium and tritium.

The phrase “alkyl” refers to alkyl groups that do not contain heteroatoms. Thus the phrase includes straight chain alkyl groups such as methyl, ethyl, propyl, butyl, pentyl, hexyl, heptyl, octyl, nonyl, decyl, undecyl, dodecyl and the like. The phrase also includes branched chain isomers of straight chain alkyl groups, including but not limited to, the following that are provided by way of example: —CH(CH 3 ) 2 , —CH(CH 3 )(CH 2 CH 3 ), —CH(CH 2 CH 3 ) 2 , —C(CH 3 ) 3 , —C(CH 2 CH 3 ) 3 , —CH 2 CH(CH 3 ) 2 , —CH 2 CH(CH 3 )(CH 2 CH 3 ), —CH 2 CH(CH 2 CH 3 ) 2 , —CH 2 C(CH 3 ) 3 , —CH 2 C(CH 2 CH 3 ) 3 , —CH(CH 3 )CH(CH 3 )(CH 2 CH 3 ), —CH 2 CH 2 CH(CH 3 ) 2 , —CH 2 CH 2 CH(CH 3 )(CH 2 CH 3 ), —CH 2 CH 2 CH(CH 2 CH 3 ) 2 , —CH 2 CH 2 C(CH 3 ) 3 , —CH 2 CH 2 C(CH 2 CH 3 ) 3 , —CH(CH 3 )CH 2 CH(CH 3 ) 2 , —CH(CH 3 )CH(CH 3 )CH(CH 3 ) 2 , —CH(CH 2 CH 3 )CH(CH 3 )CH(CH 3 )(CH 2 CH 3 ), and others. The phrase also includes cyclic alkyl groups such as cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, cycloheptyl, and cyclooctyl and such rings substituted with straight and branched chain alkyl groups as defined above. Thus the phrase alkyl groups includes primary alkyl groups, secondary alkyl groups, and tertiary alkyl groups. Preferred alkyl groups include straight and branched chain alkyl groups and cyclic alkyl groups having 1 to 12 carbon atoms.

The phrase “substituted alkyl” refers to an alkyl group as defined above in which one or more bonds to a carbon(s) or hydrogen(s) are replaced by a bond to non-hydrogen and non-carbon atoms such as, but not limited to, a halogen atom such as F, Cl, Br, and I; an oxygen atom in groups such as hydroxyl groups, alkoxy groups, aryloxy groups, and ester groups; a sulfur atom in groups such as thiol groups, alkyl and aryl sulfide groups, sulfone groups, sulfonyl groups, and sulfoxide groups; a nitrogen atom in groups such as amines, amides, alkylamines, dialkylamines, arylamines, alkylarylamines, diarylamines, N-oxides, imides, and en amines; a silicon atom in groups such as in trialkylsilyl groups, dialkylarylsilyl groups, alkyldiarylsilyl groups, and triarylsilyl groups; and other heteroatoms in various other groups. Substituted alkyl groups also include groups in which one or more bonds to a carbon(s) or hydrogen(s) atom is replaced by a higher-order bond (e.g., a double- or triple-bond) to a heteroatom such as oxygen in oxo, carbonyl, carboxyl, and ester groups; nitrogen in groups such as imines, oximes, hydrazones, and nitrites. Substituted alkyl groups further include alkyl groups in which one or more bonds to a carbon(s) or hydrogen(s) atoms is replaced by a bond to an aryl, heterocyclyl group, or cycloalkyl group. Preferred substituted alkyl groups include, among others, alkyl groups in which one or more bonds to a carbon or hydrogen atom is/are replaced by one or more bonds to fluorine atoms. Another preferred substituted alkyl group is the trifluoromethyl group and other alkyl groups that contain the trifluoromethyl group. Other preferred substituted alkyl groups include those in which one or more bonds to a carbon or hydrogen atom is replaced by a bond to an oxygen atom such that the substituted alkyl group contains a hydroxyl, alkoxy, or aryloxy group. Still other preferred substituted alkyl groups include alkyl groups that have an amine, or a substituted or unsubstituted alkylamine, dialkylamine, arylamine, (alkyl)(aryl)amine, diarylamine, heterocyclylamine, diheterocyclylamine, (alkyl)(heterocyclyl)amine, or (aryl)(heterocyclyl)amine group.

The phrase “alkenyl” refers to straight and branched chain and cyclic groups such as those described with respect to alkyl groups as defined above, except that at least one double bond exists between two carbon atoms. Examples include, but are not limited to vinyl, —CH═C(H)CH 3 ), —CH═C(CH 3 ) 2 , —C(CH 3 )═C(H) 2 , —C(CH 3 )═C(H)(CH 3 ), —C(CH 2 CH 3 )═CH 2 , cyclohexenyl, cyclopentenyl, cyclohexadienyl, butadienyl, pentadienyl, and hexadienyl among others. The phrase “substituted alkenyl” has the same meaning with respect to alkenyl groups that substituted alkyl groups had with respect to unsubstituted alkyl groups. A substituted alkenyl group includes alkenyl groups in which a non-carbon or non-hydrogen atom is bonded to a carbon double bonded to another carbon and those in which one of the non-carbon or non-hydrogen atoms is bonded to a carbon not involved in a double bond to another carbon.

The phrase “alkynyl” refers to straight and branched chain groups such as those described with respect to alkyl groups as defined above, except that at least one triple bond exists between two carbon atoms. Examples include, but are not limited to —C≡C(H), —C≡C(CH 3 ), —C≡C(CH 2 CH 3 ), —C(H 2 )C≡C(H), —C(H) 2 C≡C(CH 3 ), and —C(H) 2 C≡C(CH 2 CH 3 ) among others. The phrase “substituted alkynyl” has the same meaning with respect to alkynyl groups that substituted alkyl groups had with respect to unsubstituted alkyl groups. A substituted alkynyl group includes alkynyl groups in which a non-carbon or non-hydrogen atom is bonded to a carbon triple bonded to another carbon and those in which a non-carbon or non-hydrogen atom is bonded to a carbon not involved in a triple bond to another carbon.

›DETAILED DESCRIPTION · 2 of 15

The phrase “heterocyclyl” refers to both aromatic and nonaromatic ring compounds including monocyclic, bicyclic, and polycyclic ring compounds such as, but not limited to, quinuclidinyl, containing 3 or more ring members of which one or more is a heteroatom such as, but not limited to, N, O, and S. Although the phrase “unsubstituted heterocyclyl” includes condensed heterocyclic rings such as benzimidazolyl, it does not include heterocyclyl groups that have other groups such as alkyl or halo groups bonded to one of the ring members as compounds such as 2-methylbenzimidazolyl are substituted heterocyclyl groups. Examples of heterocyclyl groups include, but are not limited to; unsaturated 3 to 8 membered rings containing 1 to 4 nitrogen atoms such as, but not limited to pyrrolyl, pyrrolinyl, imidazolyl, pyrazolyl, pyridyl, dihydropyridyl, pyrimidyl, pyrazinyl, pyridazinyl, triazolyl (e.g. 4H-1,2,4-triazolyl, 1H-1,2,3-triazolyl, 2H-1,2,3-triazolyl etc.), tetrazolyl, (e.g. 1H-tetrazolyl, 2H tetrazolyl, etc.); saturated 3 to 8 membered rings containing 1 to 4 nitrogen atoms such as, but not limited to, pyrrolidinyl, imidazolidinyl, piperidinyl, piperazinyl; condensed unsaturated heterocyclic groups containing 1 to 4 nitrogen atoms such as, but not limited to, indolyl, isoindolyl, indolinyl, indolizinyl, benzimidazolyl, quinolyl, isoquinolyl, indazolyl, benzotriazolyl; unsaturated 3 to 8 membered rings containing 1 to 2 oxygen atoms and 1 to 3 nitrogen atoms such as, but not limited to, oxazolyl, isoxazolyl, oxadiazolyl (e.g. 1,2,4-oxadiazolyl, 1,3,4-oxadiazolyl, 1,2,5-oxadiazolyl, etc); saturated 3 to 8 membered rings containing 1 to 2 oxygen atoms and 1 to 3 nitrogen atoms such as, but not limited to, morpholinyl; unsaturated condensed heterocyclic groups containing 1 to 2 oxygen atoms and 1 to 3 nitrogen atoms, for example, benzoxazolyl, benzoxadiazolyl, benzoxazinyl (e.g. 2H-1,4-benzoxazinyl etc.); unsaturated 3 to 8 membered rings containing 1 to 3 sulfur atoms and 1 to 3 nitrogen atoms such as, but not limited to, thiazolyl, isothiazolyl, thiadiazolyl (e.g. 1,2,3-thiadiazolyl, 1,2,4-thiadiazolyl, 1,3,4-thiadiazolyl, 1,2,5-thiadiazolyl, etc.); saturated 3 to 8 membered rings containing 1 to 2 sulfur atoms and 1 to 3 nitrogen atoms such as, bat not limited to, thiazolodinyl; saturated and unsaturated 3 to 8 membered rings containing 1 to 2 sulfur atoms such as, but not limited to, thienyl, dihydrodithiinyl, dihydrodithionyl, tetrahydrothiophene, tetrahydrothiopyran; unsaturated condensed heterocyclic rings containing 1 to 2 sulfur atoms and 1 to 3 nitrogen atoms such as, but not limited to, benzothiazolyl, benzothiadiazolyl, benzothiazinyl (e.g. 2H-1,4-benzothiazinyl, etc.), dihydrobenzothiazinyl (e.g. 2H-3,4-dihydrobenzothiazinyl, etc.), unsaturated 3 to 8 membered rings containing oxygen atoms such as, but not limited to furyl; unsaturated condensed heterocyclic rings containing 1 to 2 oxygen atoms such as benzodioxolyl (e.g. 1,3-benzodioxoyl, etc.); unsaturated 3 to 8 membered rings containing an oxygen atom and 1 to 2 sulfur atoms such as, but not limited to, dihydrooxathiinyl; saturated 3 to 8 membered rings containing 1 to 2 oxygen atoms and 1 to 2 sulfur atoms such as 1,4-oxathiane; unsaturated condensed rings containing 1 to 2 sulfur atoms such as benzothienyl, benzodithiinyl; and unsaturated condensed heterocyclic rings containing an oxygen atom and 1 to 2 oxygen atoms such as benzoxathiinyl. Heterocyclyl group also include those described above in which one or more S atoms in the ring is double-bonded to one or two oxygen atoms (sulfoxides and sulfones). For example, heterocyclyl groups include tetrahydrothiophene, tetrahydrothiophene oxide, and tetrahydrothiophene 1,1-dioxide. Preferred heterocyclyl groups contain 5 or 6 ring members. More preferred heterocyclyl groups include morpholine, piperazine, piperidine, pyrrolidine, imidazole, pyrazole, 1,2,3-triazole, 1,2,4-triazole, tetrazole, thiomorpholine, thiomorpholine in which the S atom of the thiomorpholine is bonded to one or more O atoms, pyrrole, homopiperazine, oxazolidin-2-one, pyrrolidin-2-one, oxazole, quinuclidine, thiazole, isoxazole, furan, and tetrahydrofuran.

The phrase “substituted heterocyclyl” refers to a heterocyclyl group as defined above in which one of the ring members is bonded to a non-hydrogen atom such as described above with respect to substituted alkyl groups and substituted aryl groups. Examples, include, but are not limited to, 2-methylbenzimidazolyl, 5-methylbenzimidazolyl, 5-chlorobenzthiazolyl, 1-methyl piperazinyl, and 2-chloropyridyl among others.

The phrase “aryl” refers to aryl groups that do not contain heteroatoms. Thus the phrase includes, but is not limited to, groups such as phenyl, biphenyl, anthracenyl, naphthenyl by way of example. Although the phrase “unsubstituted aryl” includes groups containing condensed rings such as naphthalene, it does not include aryl groups that have other groups such as alkyl or halo groups bonded to one of the ring members, as aryl groups such as tolyl are considered herein to be substituted aryl groups as described below. A preferred unsubstituted aryl group is phenyl. Unsubstituted aryl groups may be bonded to one or more carbon atom(s), oxygen atom(s), nitrogen atom(s), and/or sulfur atom(s) in the parent compound, however.

The phrase “substituted aryl group” has the same meaning with respect to unsubstituted aryl groups mat substituted alkyl groups had with respect to unsubstituted alkyl groups. However, a substituted aryl group also includes aryl groups in which one of the aromatic carbons is bonded to one of the non-carbon or non-hydrogen atoms described above and also includes aryl groups in which one or more aromatic carbons of the aryl group is bonded to a substituted and/or unsubstituted alkyl, alkenyl, or alkynyl group as defined herein. This includes bonding arrangements in which two carbon atoms of an aryl group are bonded to two atoms of an alkyl, alkenyl, or alkynyl group to define a fused ring system (e.g. dihydronaphthyl or tetrahydronaphthyl). Thus, the phrase “substituted aryl” includes, but is not limited to tolyl, and hydroxyphenyl among others. Preferred substituents include straight and branched chain alkyl groups, —CH 3 , —C 2 H 5 , —CH 2 OH, —OH, —OCH 3 , —OC 2 H 5 , —OCF 3 , —CN, —NO 2 , —CO 2 H, —CO 2 CH 3 , —CONH 2 , —NH 2 , —F, —Cl, —Br, —CF 3 , —N(CH 3 ) 2 , —NHSO 2 CH 3 , —NHCOCH 3 .

›DETAILED DESCRIPTION · 3 of 15

The term “heteroaryl”, as used herein, refers to a cyclic or bicyclic aromatic radical having from five to ten ring atoms in each ring of which one atom of the cyclic or bicyclic ring is selected from S, O and N; zero, one or two ring atoms are additional heteroatoms independently selected from S, O and N; and the remaining ring atoms are carbon, the radical being joined to the rest of the molecule via any of the ring atoms, such as, for example, pyridyl, pyrazinyl, pyrimidinyl, pyrrolyl, pyrazolyl, imidazolyl, thiazolyl, oxazolyl, isooxazolyl, thiadiazolyl, oxadiazolyl, thiophenyl furanyl, quinolinyl, isoquinolinyl, and naphthyridinyl, and the like.

The term “substituted heteroaryl” as used herein refers to a heteroaryl group as defined herein substituted by independent replacement of one, two or three of the hydrogen atoms thereon with Cl, Br, F, I, OH, CN, C 1 -C 3 -alkyl, C 1 -C 6 -alkoxy, C 1 -C 6 -alkoxy substituted with aryl, haloalkyl, thioalkoxy, amino, alkylamino, dialkylamino, mercapto, nitro, carboxaldehyde, carboxy, alkoxycarbonyl and carboxamide. In addition, any one substituent may be an aryl, heteroaryl, or heterocycloalkyl group. Preferred substituents include straight and branched chain alkyl groups, —CH 3 , —C 2 H 5 , —CH 2 OH, —OH, —OCH 3 , —OC 2 H 5 , —OCF 3 , —CN, —NO 2 , —CO 2 H, —CO 2 CH 3 , —CONH 3 , —NH 2 , —F, —Cl, —Br, —CF 3 (—N(CH 3 ) 2 , —NHSO 2 CH 3 , —NHCOCH 3 .

The term “biaryl” refers to a group or substituent to which two aryl groups, which are not condensed to each other, are bound. Exemplary biaryl compounds include, for example, phenylbenzene, diphenyldiazene, 4-methylthio-1-phenylbenzene, phenoxybenzene, (2-phenylethynyl)benzene, diphenyl ketone, (4-phenylbuta-1,3-diynyl)benzene, phenylbenzylamine, (phenylmethoxy)benzene, and the like. Preferred optionally substituted biaryl groups include: 2-(phenylamino)-N-[4-(2-phenylethynyl)phenyl]acetamide, 1,4-diphenyl(benzene, N-[4-(2-phenylethynyl)phenyl]2-[benzylamino]acetamide, 2-amino-N-[4-(2-phenylethynyl)phenyl]propanamide, 2-amino-N-[4-(2-phenylethynyl)phenyl]acetamide, 2-(cyclopropylamino)-N-[4-(2-phenylethynyl)phenyl]acetamide, 2-(ethylamino)-N-[4-(2-phenylethynyl)phenyl]acetamide, 2-[(2-methylpropyl)amino]-N-[4-(2-phenylethynyl)phenyl]acetamide, 5-phenyl-2H-benzo[d]1,3-dioxolene, 2-chloro-1-methoxy-4-phenylbenzene, 2-[(imidazolylmethyl)amino]-N-[4-(2-phenylethynyl)phenyl]acetamide, 4-phenyl-1-phenoxybenzene, N-(2-aminoethyl)[4-(2-phenylethynyl)phenyl]carboxamide, 2-{[(4-fluorophenyl)methyl]amino}-N-[4-(2-phenylethynyl)phenyl]acetamide, 2-{[(4-methylphenyl)methyl]amino}-N-[4-(2-phenylethynyl)phenyl]acetamide, 4-phenyl-1-(trifluoromethyl)benzene, 1-butyl-4-phenylbenzene, 2-(cyclohexylamino)-N-[4-(2-phenylethynyl)phenyl]acetamide, 2-(ethylmethylamino)-N-[4-(2-phenylethynyl)phenyl]acetamide, 2-(butylamino)-N-[4-(2-phenylethynyl)phenyl]acetamide, N-[4-(2-phenylethynyl)phenyl]-2-(4-pyridylamino)acetamide, N-[4-(2-phenylethynyl)phenyl]-2-(quinuclidin-3-ylamino)acetamide, N-[4-(2-phenylethynyl)phenyl]pyrrolidin-2-ylcarboxamide, 2-amino-3-methyl-N-[4-(2-phenylethynyl)phenyl]butanamide, 4-(4-phenylbuta-1,3-diynyl)phenylamine, 2-(dimethylamino)-N-[4-(4-phenylbuta-1,3-diynyl)phenyl]acetamide, 2-(ethylamino)-N-[4-(4-phenylbuta-1,3-diynyl)phenyl]acetamide, 4-ethyl-1-phenylbenzene, 1-[4-(2-phenylethynyl)phenyl]ethan-1-one, N-(1-carbamoyl-2-hydroxypropyl)[4-(4-phenylbuta-1,3-diynyl)phenyl]carboxamide, N-[4-(2-phenylethynyl)phenyl]propanamide, 4-methoxyphenyl phenyl ketone, phenyl-N-benzamide, (tert-butoxy)-N-[(4-phenylphenyl)methyl]carboxamide, 2-(3-phenylphenoxy)ethanehydroxamic acid, 3-phenylphenyl propanoate, 1-(4-ethoxyphenyl)-4-methoxybenzene, and [4-(2-phenylethynyl)phenyl]pyrrole.

The term “heteroarylaryl” refers to a biaryl group where one of the aryl groups, is a heteroaryl group. Exemplary heteroarylaryl groups include, for example, 2-phenylpyridine, phenylpyrrole, 3-(2-phenylethynyl)pyridine, phenylpyrazole, 5-(2-phenylethynyl)-1,3-dihydropyrimidine-2,4-dione, 4-phenyl-1,2,3-thiadiazole, 2-(2-phenylethynyl)pyrazine, 2-phenylthiophene, phenylimidazole, 3-(2-piperazinylphenyl)furan, 3-(2,4-dichlorophenyl)-4-methylpyrrole, and the like. Preferred optionally substituted heteroarylaryl groups include: 5-(2-phenylethynyl)pyrimidine-2-ylamine, 1-methoxy-4-(2-thienyl)benzene, 1-methoxy-3-(2-thienyl)benzene, 5-methyl-2-phenylpyridine, 5-methyl-3-phenylisoxazole, 2-[3-(trifluoromethyl)phenyl]furan, 3-fluoro-5-(2-furyl)-2-methoxy-1-prop-2-enylbenzene, (hydroxyimino)(5-phenyl(2-thienyl))methane, 5-[(4-methylpiperazinyl)methyl]-2-phenylthiophene, 2-(4-ethylphenyl)thiophene, 4-methylthio-1-(2-thienyl)benzene, 2-(3-nitrophenyl)thiophene, (tert-butoxy)-N-[(5-phenyl(3-pyridyl))methyl]carboxamide, hydroxy-N-[(5-phenyl(3-pyridyl))methyl]amide, 2-(phenylmethylthio)pyridine, and benzylimidazole.

The term “heteroarylheteroaryl” refers to a biaryl group where both of the aryl groups is a heteroaryl group. Exemplary heteroarylheteroaryl groups include, for example, 3-pyridylimidazole, 2-imidazolylpyrazine, and the like. Preferred optionally substituted heteroarylheteroaryl groups include: 2-(4-piperazinyl-3-pyridyl)furan, diethyl(3-pyrazin-2-yl(4-pyridyl))amine, and dimethyl {2-[2-(5-methylpyrazin-2-yl)ethynyl](4-pyridyl)}amine.

“Optionally substituted” refers to the optional replacement of hydrogen with one or more monovalent or divalent radicals. Optionally substituted groups include those described herein, for each group in which a distinct definition for substitution is supplied. Additionally, suitable substitution groups include, for example, hydroxyl, nitro, amino, amino, cyano, halo, thio, thioamido, amidino, imidino, oxo, oxamidino, methoxamidino, imidino, guanidino, sulfonamido, carboxyl, formyl, alkyl, substituted alkyl, haloloweralkyl, loweralkoxy, haloloweralkoxy, loweralkoxyalkyl, alkylcarbonyl, arylcarbonyl, aralkylcarbonyl, heteroarylcarbonyl, heteroaralkylcarbonyl, alkylthio, aminoalkyl, cyanoalkyl, benzyl, pyridyl, pyrazolyl, pyrrole, thiophene, imidazolyl, and the like.

›DETAILED DESCRIPTION · 4 of 15

Representative substituted amidino and heterocycloamidino groups include, for example, those shown below. These amidino and heterocycloamidino groups can be further substituted as will be apparent to those having skill in the organic and medicinal chemistry arts in conjunction with the disclosure herein.

Representative substituted alkylcarbonylamino, alkyloxycarbonylamino, aminoalkyloxycarbonylamino, and arylcarbonylamino groups include, for example, those shown below. These groups can be further substituted as will be apparent to those having skill in the organic and medicinal chemistry arts in conjunction with the disclosure herein.

Representative substituted aminocarbonyl groups include, for example, those shown below. These can be further substituted by heterocyclo groups and heteroaryl groups as will be apparent to those having skill in the organic and medicinal chemistry arts in conjunction with the disclosure herein. Preferred aminocarbonyl groups include: N-(2-cyanoethyl)carboxamide, N-(3-methoxypropyl)carboxamide, N-cyclopropylcarboxamide, N-(2-hydroxy-isopropyl)carboxamide, methyl 2-carbonylamide, 3-hydroxypropanoate, N-(2-hydroxypropyl)carboxamide, N-(2-hydroxy-isopropyl)carboxamide, N-[2-hydroxy-1-(hydroxymethyl)ethyl]carboxamide, N-(2-carbonylaminoethyl)acetamide, N-(2-(2-pyridyl)ethyl)carboxamide, N-(2-pyridylmethyl)carboxamide, N-(oxolan-2-ylmethyl)carboxamide, N-(4-hydroxypyrrolidin-2-yl)carboxamide, N-[2-(2-hydroxyethoxy)ethyl]carboxamide, N-(4-hydroxycyclohexyl)carboxamide, N-[2-(2-oxo-4-imidazolinyl)ethyl]carboxamide, N-(carbonylaminomethyl)acetamide, N-(3-pyrrolidinylpropyl)carboxamide, N-[1-(carbonylaminomethyl)pyrrolidin-3-yl]acetamide, N-(2-morpholin-4-ylethyl)carboxamide, N-[3-(2-oxopyrrolidinyl)propyl]carboxamide, 4-methyl-2-oxopiperazinecarbaldehyde, N-(2-hydroxy-3-pyrrolidinylpropyl)carboxamide, N-(2-hydroxy-3-morpholin-4-ylpropyl)carboxamide, N-{2-[(5-cyano-2-pyridyl)amino]ethyl}carboxamide, 3-(dimethylamino)pyrrolidinecarbaldehyde, N-[(5-methylpyrazin-2-yl)methyl]carboxamide, 2,2,2-trifluoro-N-(1-formylpyrrolidin-3-yl)acetamide,

Representative substituted alkoxycarbonyl groups include, for example, those shown below. These alkoxycarbonyl groups can be further substituted as will be apparent to those having skill in the organic and medicinal chemistry arts in conjunction with the disclosure herein.

The term “protected” with respect to hydroxyl groups, amine groups, and sulfhydryl groups refers to forms of these functionalities that are protected from undesirable reaction with a protecting group known to those skilled in the art such as those set forth in Protective Groups in Organic Synthesis, Greene, T. W.; Wuts, P. G. M., John Wiley & Sons, New York, N.Y., (3rd Edition, 1999) that can be added or removed using the procedures set forth therein. Examples of protected hydroxyl groups include, but are not limited to, silyl ethers such as those obtained by reaction of a hydroxyl group with a reagent such as, but not limited to, t-butyldimethyl-chlorosilane, trimethylchlorosilane, triisopropylchlorosilane, triethylchlorosilane; substituted methyl and ethyl ethers such as, but not limited to methoxymethyl ether, methythiomethyl ether, benzyloxymethyl ether, t-butoxymethyl ether, 2-methoxyethoxymethyl ether, tetrahydropyranyl ethers, 1-ethoxyethyl ether, allyl ether, benzyl ether, esters such as, but not limited to, benzoylformate, formate, acetate, trichloroacetate, and trifluoracetate. Examples of protected amine groups include, but are not limited to, amides such as, formamide, acetamide, trifluoroacetamide, and benzamide; imides, such as phthalimide, and dithiosuccinimide; and others. Examples of protected sulfhydryl groups include, but are not limited to, thioethers such as S-benzyl thioether, and S-4-picolyl thioether, substituted S-methyl derivatives such as hemithio, dithio and aminothio acetals; and others.

A “pharmaceutically acceptable salt” includes a salt with an inorganic base, organic base, inorganic acid, organic acid, or basic or acidic amino acid. As salts of inorganic bases, the invention includes, for example, alkali metals such as sodium or potassium; alkaline earth metals such as calcium and magnesium or aluminum; and ammonia. As salts of organic bases, the invention includes, for example, trimethylamine, triethylamine, pyridine, picoline, ethanolamine, diethanolamine, and triethanolamine. As salts of inorganic acids, the instant invention includes, for example, hydrochloric acid, hydroboric acid, nitric acid, sulfuric acid, and phosphoric acid. As salts of organic acids, the instant invention includes, for example, formic acid, acetic acid, trifluoroacetic acid, fumaric acid, oxalic acid, tartaric acid, maleic acid, citric acid, succinic acid, malic acid, methanesulfonic acid, benzenesulfonic acid, and p-toluenesulfonic acid. As salts of basic amino acids, the instant invention includes, for example, arginine, lysine and ornithine. Acidic amino acids include, for example, aspartic acid and glutamic acid.

As used herein, the term “pharmaceutically acceptable ester” refers to esters that hydrolyze in vivo and include those that break down readily in the human body to leave the parent compound or a salt thereof. Suitable ester groups include, for example, those derived from pharmaceutically acceptable aliphatic carboxylic acids, particularly alkanoic, alkenoic, cycloalkanoic and alkanedioic acids, in which each alkyl or alkenyl moiety advantageously has not more than 6 carbon atoms. Representative examples of particular esters include, but are not limited to, formates, acetates, propionates, butyrates, acrylates and ethylsuccinates.

The term “pharmaceutically acceptable prodrugs” as used herein refers to those prodrugs of the compounds of the present invention that are, within the scope of sound medical judgment, suitable for use in contact with the tissues of humans and lower animals without undue toxicity, irritation, allergic response, and the like, commensurate with a reasonable benefit/risk ratio, and effective for their intended use, as well as the zwitterionic forms, where possible, of the compounds of the invention. The term “prodrug” refers to compounds that are rapidly transformed in vivo to yield the parent compound of the above formula, for example by hydrolysis in blood. A thorough discussion is provided in T. Higuchi and V. Stella, Pro-drugs as Novel Delivery Systems, Vol. 14 of the A.C.S. Symposium Series, and in Edward B. Roche, ed., Bioreversible Carriers in Drug Design, American Pharmaceutical Association and Pergamon Press, 1987, both of which are incorporated herein by reference.

›DETAILED DESCRIPTION · 5 of 15

The term “antibacterial agent” refers to agents synthesized or modified in the laboratory that have either bactericidal or bacteriostatic activity. An “active” agent in this context will inhibit the growth of P. aeruginosa and other gram-negative bacteria. The term “inhibiting the growth” indicates that the rate of increase in the numbers of a population of a particular bacterium is reduced. Thus, the term includes situations in which the bacterial population increases but at a reduced rate, as well as situations where the growth of the population is stopped, as well as situations where the numbers of the bacteria in the population are reduced or the population even eliminated. If an enzyme activity assay is used to screen for inhibitors, one can make modifications in uptake/efflux, solubility, half-life, etc. to compounds in order to correlate enzyme inhibition with growth inhibition. The activity of antibacterial agents is not necessarily limited to bacteria but may also encompass activity against parasites, virus, and fungi.

The subject invention also includes isotopically-labeled LpxC inhibitors, that are structurally identical to those disclosed above, but for the fact that one or more atoms are replaced by an atom having an atomic mass or mass number different from the atomic mass or mass number usually found in nature. Examples of isotopes that can be incorporated into compounds of the invention include isotopes of hydrogen, carbon, nitrogen, oxygen, phosphorous, sulfur, fluorine and chlorine, such as 2 H, 3 H, 13 C, 14 C, 15 N, 18 O, 17 O, 31 P, 32 P, 35 S, 18 F and 36 Cl, respectively. Compounds of the present invention, prodrugs thereof, and pharmaceutically acceptable salts of said compounds and of said prodrugs that contain the aforementioned isotopes and/or other isotopes of other atoms are within the scope of this invention. Certain isotopically labeled compounds of the present invention, for example those into which radioactive isotopes such as 3 H and 14 C are incorporated, are useful in drug and/or substrate tissue distribution assays. Tritiated, i.e., 3 H, and carbon-14, i.e., 14 C, isotopes are particularly preferred for their ease of preparation and detectability. Further, substitution with heavier isotopes such as deuterium, i.e., 2 H, may afford certain therapeutic advantages resulting from greater metabolic stability, for example increased in vivo half-life or reduced dosage requirements and, hence, may be preferred in some circumstances. Isotopically labeled compounds of this invention and prodrugs thereof can generally be prepared by carrying out known or referenced procedures and by substituting a readily available isotopically labeled reagent for a non-isotopically labeled reagent.

The present invention provides novel compounds, pharmaceutical formulations including the compounds, methods of inhibiting UDP-3-O—(R-3-hydroxydecanoyl)-N-acetylglucosamine deacetylase (LpxC), and methods of treating gram-negative bacterial infections.

In one embodiment, the present invention provides compounds of formula I:

or stereoisomers, pharmaceutically acceptable salts, esters, and prodrugs thereof, wherein E is absent or selected from the group consisting of

(1) H,

(2) substituted or unsubstituted C 1 -C 6 -alkyl,

(3) substituted or unsubstituted C 2 -C 6 -alkenyl,

(4) substituted or unsubstituted C 2 -C 6 -alkynyl,

(5) substituted or unsubstituted aryl,

(6) substituted or unsubstituted heterocyclyl, and

(7) substituted or unsubstituted heteroaryl;

L is absent or selected from the group consisting of

(1) substituted or unsubstituted C 1 -C 6 -alkyl,

(2) —(NH) 0-1 —(CH 2 ) j —NR 3L —(CH 2 ) k —,

(3) —(NH) 0-1 —C(R 1L ,R 2L )—NR 3L —C(R 1L ,R 2L )—,

(4) —C(R 1L ,R 2L )—O—C(R 1L ,R 2L )—,

(5) —(CH 2 ) j —NR 3L —C(R 1L ,R 2L )—CONH—(CH)—,

(6) —CO—C(R 1L ,R 2L )—NHCO—,

(7) —CONH—,

(8) —NHCO—,

wherein

R 1L , R 2L , and R 3L are independently selected from the group consisting of

(a) H, (b) substituted or unsubstituted C 1 -C 6 -alkyl, (c) C 1 -C 6 -alkyl substituted with aryl, (d) C 1 -C 6 -alkyl substituted with heterocyclyl, and (e) C 1 -C 6 -alkyl substituted with heteroaryl, or R 1L and R 3L , together with the atoms to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 3 to 8 ring atoms, wherein 1-2 ring atoms of the heterocyclic ring system are selected from N, O and S,

j is an integer of 0-4;

k is an integer of 0-4;

D is absent or selected from the group consisting of

(1) substituted or unsubstituted C 3 -C 8 -cycloalkyl,

(2) substituted or unsubstituted aryl,

(3) substituted or unsubstituted heterocyclyl, and

(4) substituted or unsubstituted heteroaryl;

G is absent or selected from the group consisting of

(1) —(CH 2 ) i —O—(CH 2 ) i —,

(2) —(CH 2 ) i —S—(CH 2 ) i —,

(3) —(CH 2 ) i —NR g —(CH 2 ) i —,

(4) —C(═O)—,

(5) —NHC(═O)—,

(6) —C(═O)NH—,

(7) —(CH 2 ) i NHCH 2 C(═O)NH—,

(8) —C≡C—,

(9) —C≡C—C≡C—, and

(10) —C═C—;

wherein

Rg is H or substituted or unsubstituted C 1 -C 6 -alkyl;

i is an integer of 0-4;

Y is selected from the group consisting of

(1) substituted or unsubstituted C 3 -C 8 -cycloalkyl,

(2) substituted or unsubstituted aryl,

(3) substituted or unsubstituted heterocyclyl, and

(4) substituted or unsubstituted heteroaryl;

X is selected from the group consisting of

(1) —(C═O)—,

(2) —C 1 -C 6 -alkyl-(C═O)—,

(3) —C 2 -C 6 -alkenyl-(C═O)—,

(4) —C 2 -C 6 -alkynyl-(C═O)—, and

(5) —CH 2 —;

or when B is absent, X and A, together with the atoms to which they are attached can form a heterocyclic ring, having from 5 to 8 ring atoms, wherein 1-2 ring atoms of the heterocyclic ring system are selected from N, O and S;

B is a absent or

wherein R 1b and R 2b , are independently selected from the group consisting of

(a) H, (b) substituted or unsubstituted C 1 -C 6 -alkyl, (c) substituted or unsubstituted C 2 -C 6 -alkenyl, (d) substituted or unsubstituted C 2 -C 6 -alkynyl, (e) substituted or unsubstituted aryl, (f) substituted or unsubstituted heterocyclyl, (g) substituted or unsubstituted heteroaryl, (h) C 1 -C 6 -alkyl substituted with aryl, (i) C 1 -C 6 -alkyl substituted with heterocyclyl, and (j) C 1 -C 6 -alkyl substituted with heteroaryl, or R 1b and R 2b , together with the atoms to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 3 to 8 ring atoms, wherein 1-2 ring atoms of the heterocyclic ring system are selected from N, O and S;

›DETAILED DESCRIPTION · 6 of 15

q is an integer of 0-4;

R 3 is H or substituted or unsubstituted C 1 -C 6 -alkyl,

or R 3 and A, together with the atoms to which they are attached can form a substituted or unsubstituted 3-10 membered cycloalkyl or a heterocyclic ring system, wherein the heterocyclic ring system may have from 3 to 10 ring atoms, with 1 to 2 rings being in the ring system and contain from 1-4 heteroatoms selected from N, O and S;

R 4 is H or substituted or unsubstituted C 1 -C 6 -alkyl,

or R 4 and A together with the atoms to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 3 to 8 ring atoms, wherein 1-2 ring atoms of the heterocyclic ring system are selected from N, O and S;

n is an integer of 0-2;

A is selected from the group consisting of

(1) H,

(2) —(CH 2 ) r C(R 1a ,R 2a )(CH 2 ) 5 OR 3a ,

(3) —(CH 2 ) r C(R 1a ,R 2a )N(R 4a ,R 5a ),

(4) —(CH 2 ) r C(R 1a ,R 2a )N(R 4a )COR 3a ,

(5) —(CH 2 ) r C(R 1a ,R 2a )NHCON(R 4a ,R 5a )

(6) —(CH 2 ) r C(R 1a ,R 2a )NHC(═NH)N(R 4a ,R 5a )

(7) —CH(R 1a ,R 2a )

(8) —C≡CH,

(9) —(CH 2 ) r C(R 1a ,R 2a )CN,

(10) —(CH 2 ) r C(R 1a ,R 2a )CO 2 R 3a , and

(11) —(CH 2 ) r C(R 1a ,R 2a )CN(R 4a ,R 5a ),

wherein R 1a , R 2a , R 3a , R 4a , and R 5a are independently selected from the group consisting of

(a) H, (b) substituted or unsubstituted C 1 -C 6 -alkyl, (c) substituted or unsubstituted aryl, (d) substituted or unsubstituted heterocyclyl, (e) substituted or unsubstituted heteroaryl, (f) C 1 -C 6 -alkyl substituted with aryl, (g) C 1 -C 6 -alkyl substituted with heterocyclyl, and (h) C 1 -C 6 -alkyl substituted with heteroaryl, or R 4a and R 5a together with the N atom to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 3 to 8 ring atoms, wherein 1-2 ring atoms of the heterocyclic ring system are selected from N, O and S;

r is an integer of 0-4;

s is an integer of 0-4;

Q is absent or selected from the group consisting of

(1) —C(═O)N(R 1 ,R 2 ),

(2) —NHC(═O)N(R 1 ,R 2 ),

(3) —N(OH)C(═O)N(R 1 ,R 2 ),

(4) —CH(OH)C(═O)N(R 1 ,R 2 ),

(5) —CH[N(R 2q , R 3q )]C(═O)N(R 1 ,R 2 ),

(6) —CHR 1q C(═O)N(R 1 ,R 2 ),

(7) —CO 2 O,

(8) —C(═O)NHSO 2 R 4q ,

(9) —SO 2 NH 2 ,

(10) —N(OH)C(═O)R 1q ,

(11) —N(OH)SO 2 R 4q ,

(12) —NHSO 2 R 4q ,

(13) —SH,

(14) —CH(SH)(CH 2 ) 0-1 C(═O)N(R 1 ,R 2 ),

(15) —CH(SH)(CH 2 ) 0-1 CO 2 H,

(16) —CH(OH)(CH 2 ) 0-1 CO 2 H,

(17) —CH(SH)CH 2 CO 2 R 1q ,

(18) —CH(OH)(CH 2 )SO 2 NH 2 ,

(19) —CH(CH 2 SH)NHCOR 1q ,

(20) —CH(CH 2 SH)NHSO 2 R 4q ,

(21) —CH(CH 2 SR 5q )CO 2 H,

(22) —CH(CH 2 SH)NHSO 2 NH 2 ,

(23) —CH(CH 2 OH)CO 2 H,

(24) —CH(CH 2 OH)NHSO 2 NH 2 ,

(25) —C(═O)CH 2 CO 2 H,

(26) —C(═O)(CH 2 ) 0-1 CONH 2 ,

(27) —OSO 2 NHR 5q ,

(28) —SO 2 NHNH 2 ,

(29) —P(═O)(OH) 2 ,

R 1 is selected from the group consisting of

(1) —H,

(2) —OH,

(3) —OC 1-6 -alkyl,

(4) —N(R 2q ,R 3q ), and

(5) substituted or unsubstituted C 1-6 -alkyl;

R 1 is selected from the group consisting of

(1) H,

(2) substituted or unsubstituted C 1 -C 6 -alkyl,

(3) substituted or unsubstituted C 2 -C 6 -alkenyl,

(4) substituted or unsubstituted C 2 -C 6 -alkenyl,

(5) substituted or unsubstituted aryl,

(6) substituted or unsubstituted heterocyclyl,

(7) substituted or unsubstituted heteroaryl,

(8) C 1 -C 6 -alkyl substituted with aryl,

(9) C 1 -C 6 -alkyl substituted with heterocyclyl, and

(10) C 1 -C 6 -alkyl substituted with heteroaryl,

or R 1 and R 2 , together with the N atom to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 3 to 10 ring atoms, wherein 1-4 ring atoms of the heterocyclic ring system are selected from N, O and S,

R 1q , R 2q , R 3q , R 4q , and R 5q are selected from H or C 1 -C 6 alkyl,

wherein B is absent, or E, L, G, and B are absent, or E, L, and G are absent, or E, L, and B are absent, or E, L, D, G, and B are absent.

In another embodiment, the present invention provides compounds of formula I:

or stereoisomers, pharmaceutically acceptable salts, esters, and prodrugs thereof, wherein E is absent or selected from the group consisting of

(1) H,

(2) substituted or unsubstituted C 1 -C 6 -alkyl,

(3) substituted or unsubstituted aryl,

(4) substituted or unsubstituted heterocyclyl, and

(5) substituted or unsubstituted heteroaryl;

L is absent or selected from the group consisting of

(1) —(CH 2 ) j —NR 3L —(CH 2 ) k —,

(2) —C(R 1L ,R 2L ) j —NR 3L —C(R 1L ,R 2L ) k —,

(3) —C(R 1L ,R 2L ) j —O—C(R 1L ,R 2L ) k —,

(4) —(CH 2 ) j —NR 3L —C(R 1L ,R 2L ) k —CONH—(CH 2 ) k —,

(5) —CO—C(R 1L ,R 2L )—NHCO—,

(6) —CONH—, and

(7) —NHCO—;

wherein

R 1L , R 2L , R 3L are independently selected from the group consisting of

(a) H, (b) substituted or unsubstituted C 1 -C 6 -alkyl, (c) C 1 -C 6 -alkyl substituted with aryl, (d) C 1 -C 6 -alkyl substituted with heterocyclyl, (e) C 1 -C 6 -alkyl substituted with heteroaryl, or R 1L and R 3L , together with the atoms to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 5 to 8 ring atoms, wherein 1-2 ring atoms of the heterocyclic ring system are selected from N, O and S;

j is an integer of 0-4;

k is an integer of 0-4;

D is absent or selected from the group consisting of

(1) substituted or unsubstituted C 3 -C 8 -cycloalkyl,

(2) substituted or unsubstituted aryl,

(3) substituted or unsubstituted heterocyclyl,

(4) substituted or unsubstituted heteroaryl, and

G is absent or selected from the group consisting of

(1) —C(═O)—,

(2) —NHC(═O)—,

(3) —C(═O)NH—,

(4) —(CH 2 ) j NHCH 2 C(═O)NH—,

(5) —C≡C—, and

(6) —C≡C—C≡C—,

wherein i is an integer of 0-4;

Y is selected from the group consisting of

(1) substituted or unsubstituted C 3 -C 8 -cycloalkyl,

(2) substituted or unsubstituted aryl,

(3) substituted or unsubstituted heterocyclyl, and

(4) substituted or unsubstituted heteroaryl;

X is selected from the group consisting of

(1) —(C═O)—,

(2) —C 1 -C 6 -alkyl-(C═O)—,

(3) —C 2 -C 6 -alkenyl-(C═O)—,

(4) —C 2 -C 6 -alkynyl-(C═O)—, and

(5) —CH 2 —;

or when B is absent, X and A, together with the atoms to which they are attached can form a heterocyclic ring, having from 5 to 8 ring atoms, wherein 1-2 ring atoms of the heterocyclic ring system are selected from N, O and S;

›DETAILED DESCRIPTION · 7 of 15

B is absent or

wherein R 1b and R 2b are independently selected from the group consisting of

(a) H (b) substituted or unsubstituted C 1 -C 6 -alkyl, (c) substituted or unsubstituted C 2 -C 6 -alkenyl, (d) substituted or unsubstituted C 2 -C 6 -alkenyl, (e) substituted or unsubstituted aryl, (f) substituted or unsubstituted heterocyclyl, (g) substituted or unsubstituted heteroaryl, (h) C 1 -C 8 -alkyl substituted with aryl, (i) C 1 -C 6 -alkyl substituted with heterocyclyl, and (j) C 1 -C 6 -alkyl substituted with heteroaryl, or R 1b and R 2b , together with the atoms to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 5 to 8 ring atoms, wherein 1-2 ring atoms of the heterocyclic ring system are selected from N, O and S;

q is an integer of 0-2;

R 3 is H or substituted or unsubstituted C 1 -C 6 -alkyl,

or R 3 and A, together with the atoms to which they are attached can form a substituted or unsubstituted 3-10 membered cycloalkyl or a heterocyclic ring system, wherein the heterocyclic ring system may have from 3 to 10 ring atoms, with 1 to 2 rings being in the ring system and contain from 1-4 heteroatoms selected from N, O and S;

R 4 is H or substituted or unsubstituted C 1 -C 6 -alkyl,

or R 4 and A, together with the atoms to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 5 to 8 ring atoms, wherein 1-2 ring atoms of the heterocyclic ring system are selected from N, O and S;

A is selected from the group consisting of

(1) H,

(2) —(CH 2 ) r C(R 1a ,R 2a )(CH 2 ) 5 OR 3a ,

(3) —(CH 2 ) r C(R 1a ,R 2a )N(R 4a ,R 5a ),

(4) —(CH 2 ) r C(R 1a ,R 2a )N(R 4a )COR 3a ,

(5) —(CH 2 ) r C(R 1a ,R 2a )NHCON(R 4a ,R 5a )

(6) —(CH 2 ) r C(R 1a ,R 2a )NHC(═NH)N(R 4a ,R 5a ),

(7) —CH(R 1a ,R 2a ),

(8) —C≡CH,

(9) —(CH 2 ) r C(R 1a ,R 2a )CN, and

(10) —(CH 2 ) r C(R 1a ,R 2a )CO 2 R 3a ,

wherein R 1a , R 2a , R 3a , R 4a , and R 5a are independently selected from the group consisting of

(a). H, (b) substituted or unsubstituted C 1 -C 6 -alkyl, (c) C 1 -C 6 -alkyl substituted with aryl, (d) C 1 -C 6 -alkyl substituted with heterocyclyl, and (e) C 1 -C 6 -alkyl substituted with heteroaryl, or R 4a and R 5a , together with the N atom to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 5 to 8 ring atoms, wherein 1-2 ring atoms of the heterocyclic ring system are selected from N, O and S;

r is an integer of 0-4;

Q is absent or selected from the group consisting of

(1) —C(═O)N(R 1 ,R 2 ),

(2) —NHC(═O)N(R 1 ,R 2 ),

(3) —N(OH)C(═O)N(R 1 ,R 2 ),

(4) —CH(OH)C(═O)N(R 1 ,R 2 ),

(5) —CH[N(R 2q , R 3q )]C(═O)N(R 1 ,R 2 ), and

(6) —CHR 1q C(═O)N(R 1 ,R 2 ),

R 1 is selected from the group consisting of

(1) H,

(2) OH,

(3) OC 1-6 -alkyl,

(4)N(R 2q , R 3q ), and

(5) substituted or unsubstituted C 1-6 -alkyl;

R 2 is selected from the group consisting of

(1) H,

(2) substituted or unsubstituted C 1 -C 6 -alkyl,

(3) substituted or unsubstituted aryl,

(4) substituted or unsubstituted heterocyclyl,

(5) substituted or unsubstituted heteroaryl,

(6) C 1 -C 6 -alkyl substituted with aryl,

(7) C 1 -C 6 -alkyl substituted with heterocyclyl, and

(8) C 1 -C 6 -alkyl substituted with heteroaryl,

or R 1 and R 2 , together with the N atom to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 3 to 10 ring atoms, wherein 1-4 ring atoms of the heterocyclic ring system are selected from N, O and S,

R 1q , R 2q , and R 3q are selected from H or C 1 -C 6 -alkyl,

wherein B is absent, or E, L, G, and B are absent, or E, L, and G are absent, or E, L, and B are absent, or E, L, D, G, and B are absent.

In another embodiment, the present invention provides compounds of formula II:

or stereoisomers, pharmaceutically acceptable salts, esters, and prodrugs thereof, wherein D-G-Y taken together, is selected from the group consisting of

Wherein

R is selected from the group consisting of —CH 3 , —C 2 H 5 , —CH 2 OH, —OH, —OCH 3 , —OC 2 H 5 , —OCF 3 , —CN, —NO 2 , —CO 2 H, —CO 2 CH 3 , —CONH 2 , —NH 2 , —F, —Cl, —Br, —CF 3 , N(CH 3 ) 2 , —NHSO 2 CH 3 , and —NHCOCH 3 ;

X is selected from the group consisting of

(1) —(C═O)—,

(2) —C 1 -C 6 -alkyl-(C═O)—, and

(3) —C 1 -C 6 -alkenyl-(C═O)—.

In another embodiment, the present invention provides compounds of formula III:

or stereoisomers, pharmaceutically acceptable salts, esters, and prodrugs thereof, wherein D-G-Y taken together, is selected from the group consisting of

Wherein

R is selected from the group consisting of —CH 3 , —C 2 H 5 , —CH 2 OH, —OH, —OCH 3 , —OC 2 H 5 , —OCF 3 , —CN, —NO 2 , —CO 2 H, —CO 2 CH 3 , —CONH 2 , —NH 2 , —F, —Cl, —Br, —CF 3 , —N(CH 3 ) 2 , —NHSO 2 CH 3 , and —NHCOCH 3 ;

X is selected from the groups consisting of

(1) —(C═O)—,

(2) —C 1 -C 6 -alkyl-(C═O)—, and

(3) —C 2 -C 6 -alkenyl-(C═O)—.

In another embodiment, the present invention provides compounds of formula IV:

or stereoisomers, pharmaceutically acceptable salts, esters, and prodrugs thereof, wherein D-G-Y taken together, is selected from the group consisting of

Wherein

R is selected from the group consisting of —CH 3 , C 2 H 5 , —CH 2 OH, —OH, —OCH 3 , —OCH 5 , —OCF 3 , —CN, —NO 2 , —CO 2 H, —CO 2 CH 3 , —CONH 2 , —NH 2 , F, —Cl, —Br, —CF 3 , —N(CH 3 ) 2 , —NHSO 2 CH 3 , and —NHCOCH 3 ;

X is selected from the groups consisting of

(1) —(C═O)—,

(2) —C 1 -C 6 -alkyl-(C═O)—, and

(3) —C 2 -C 6 -alkenyl-(C═O)—.

In another embodiment, the present invention provides compounds of formula V;

or stereoisomers, pharmaceutically acceptable salts, esters, and prodrugs thereof, wherein D-G-Y taken together, is selected from the group consisting of

Wherein

R is selected from the group consisting of —CH 3 , —C 2 H 5 , —CH 2 OH, —OH, —OCH 3 , —OC 2 H 5 , —OCF 3 , —CN, —NO 2 , —CO 2 H, —CO 2 CH 3 , —CONH 2 , —NH 2 , —F, —Cl, —Br, —CF 3 , —N(CH 3 ) 2 , —NHSO 2 CH 3 , and —NHCOCH 3 ;

X is selected from the groups consisting of

(1) —(C═O)—,

(2) —C 1 -C 6 -alkyl-(C═O)—, and

(3) —C 2 -C 6 -alkenyl-(C═O)—.

In another embodiment, the present invention provides compounds of formula VI:

›DETAILED DESCRIPTION · 8 of 15

or stereoisomers, pharmaceutically acceptable salts, esters, and prodrugs thereof, wherein E is absent or selected from the group consisting of

(1) H,

(2) substituted or unsubstituted C 1 -C 6 -alkyl,

(3) substituted or unsubstituted aryl,

(4) substituted or unsubstituted heterocyclyl, and

(5) substituted or unsubstituted heteroaryl,

or E and R 3L , together with the atoms to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 3 to 10 ring atoms, wherein 1-4 ring atoms of the heterocyclic ring system are selected from N, O and S,

R 1L ,R 3L are independently selected from the group consisting of

(1) H,

(2) substituted or unsubstituted C 1 -C 6 -alkyl,

(3) C 1 -C 6 -alkyl substituted with aryl,

(4) C 1 -C 6 -alkyl substituted with heterocyclyl, and

(5) C 1 -C 6 -alkyl substituted with heteroaryl,

or R 1L and R 3L together with the atoms to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 3 to 8 ring atoms, wherein 1-2 ring atoms of the heterocyclic ring system are selected from N, O and S.

In another embodiment, the present invention provides compounds of formula VII:

or stereoisomers, pharmaceutically acceptable salts, esters, and prodrugs thereof, wherein E is absent or selected from the group consisting of

(1) H,

(2) substituted or unsubstituted C 1 -C 6 -alkyl,

(3) substituted or unsubstituted aryl,

(4) substituted or unsubstituted heterocyclyl, and

(5) substituted or unsubstituted heteroaryl,

or E and R 3L , together with the atoms to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 3 to 10 ring atoms, wherein 1-4 ring atoms of the heterocyclic ring system are selected from N, O and S;

R 1L , R 3L are independently selected from the group consisting of

(1) H,

(2) substituted or unsubstituted C 1 -C 6 -alkyl,

(3) C 1 -C 6 -alkyl substituted with aryl,

(4) C 1 -C 6 -alkyl substituted with heterocyclyl, and

(5) C 1 -C 6 -alkyl substituted with heteroaryl,

or R 1L and R 3L , together with the atoms to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 3 to 8 ring atoms, wherein 1-2 ring atoms of the heterocyclic ring system are selected from N, O and S.

In another embodiment, the present invention provides compounds of formula VIII:

or stereoisomers, pharmaceutically acceptable salts, esters, and prodrugs thereof, wherein E is absent or selected from the group consisting of

(1) H,

(2) substituted or unsubstituted C 1 -C 6 -alkyl,

(3) substituted or unsubstituted aryl,

(4) substituted or unsubstituted heterocyclyl, and

(5) substituted or unsubstituted heteroaryl,

or E and R 3L , together with the atoms to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 3 to 10 ring atoms, wherein 1-4 ring atoms of the heterocyclic ring system are selected from N, O and S;

R 1L , R 3L are independently selected from the group consisting of

(1) H,

(2) substituted or unsubstituted C 1 -C 6 -alkyl,

(3) C 1 -C 6 -alkyl substituted with aryl,

(4) C 1 -C 6 -alkyl substituted with heterocyclyl, and

(5) C 1 -C 6 -alkyl substituted with heteroaryl,

or R 1L and R 3L , together with the atoms to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 3 to 8 ring atoms, wherein 1-2 ring atoms of the heterocyclic ring system are selected from N, O and S.

In another embodiment, the present invention provides compounds of formula IX:

or stereoisomers, pharmaceutically acceptable salts, esters, and prodrugs thereof, wherein E is absent or selected from the group consisting of

(1) H,

(2) substituted or unsubstituted C 1 -C 6 -alkyl,

(3) substituted or unsubstituted aryl,

(4) substituted or unsubstituted heterocyclyl, and

(5) substituted or unsubstituted heteroaryl,

or E and R 3L , together with the atoms to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 3 to 10 ring atoms, wherein 1-4 ring atoms of the heterocyclic ring system are selected from N, O and S;

R 1L , R 3L are independently selected from the group consisting of

(1) H,

(2) substituted or unsubstituted C 1 -C 6 -alkyl,

(3) C 1 -C 6 -alkyl substituted with aryl,

(4) C 1 -C 6 -alkyl substituted with heterocyclyl, and

(5) C 1 -C 6 -alkyl substituted with heteroaryl,

or R 1L and R 3L , together with the atoms to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 3 to 8 ring atoms, wherein 1-2 ring atoms of the heterocyclic ring system are selected from N, O and S.

In another embodiment, the present invention provides compounds of formula X:

or stereoisomers, pharmaceutically acceptable salts, esters, and prodrugs thereof, wherein E is absent or selected from the group consisting of

(1) H,

(2) substituted or unsubstituted C 1 -C 6 -alkyl,

(3) substituted or unsubstituted aryl,

(4) substituted or unsubstituted heterocyclyl, and

(5) substituted or unsubstituted heteroaryl,

or E and R 3L , together with the atoms to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 3 to 10 ring atoms, wherein 1-4 ring atoms of the heterocyclic ring system are selected from N, O and S;

R 1L , R 3L are independently selected from the group consisting of

(1) H,

(2) substituted or unsubstituted C 1 -C 6 -alkyl,

(3) C 1 -C 6 -alkyl substituted with aryl,

(4) C 1 -C 6 -alkyl substituted with heterocyclyl, and

(5) C 1 -C 6 -allyl substituted with heteroaryl,

or R 1L and R 3L , together with the atoms to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 3 to 8 ring atoms, wherein 1-2 ring atoms of the heterocyclic ring system are selected from N, O and S.

In another embodiment, the present invention provides compounds of formula XI:

or stereoisomers, pharmaceutically acceptable salts, esters, and prodrugs thereof, wherein Y—X taken together, is selected from the group consisting of

In another embodiment, the present invention provides compounds of formula XII:

›DETAILED DESCRIPTION · 9 of 15

or stereoisomers, pharmaceutically acceptable salts, esters, and prodrugs thereof, wherein R 1b and R 2b are independently selected from the group consisting of

(1) H,

(2) substituted or unsubstituted C 1 -C 6 -alkyl,

(3) substituted or unsubstituted C 1 -C 6 -alkenyl,

(4) substituted or unsubstituted C 1 -C 6 -alkenyl,

(5) substituted or unsubstituted aryl,

(6) substituted or unsubstituted heterocyclyl,

(7) substituted or unsubstituted heteroaryl,

(8) C 1 -C 6 -alkyl substituted with aryl,

(9) C 1 -C 6 -alkyl substituted with heterocyclyl, and

(10) C 1 -C 6 -alkyl substituted with heteroaryl;

q is an integer of 0-2;

In another embodiment, the present invention provides compounds of formula XIII:

or stereoisomers, pharmaceutically acceptable salts, esters, and prodrugs thereof, wherein R 4 is selected from the group consisting of

(1) H,

(2) substituted or unsubstituted C 1 -C 6 -alkyl,

(3) C 1 -C 6 -alkyl substituted with aryl,

(4) C 1 -C 6 -alkyl substituted with heterocyclyl, and

(5) C 1 -C 6 -alkyl substituted with heteroaryl;

A is H or —CH(CH 3 )OH—;

R 1 is H or substituted or unsubstituted C 1 -C 6 -alkyl;

R 2 is selected from the group consisting of

(1) H,

(2) substituted or unsubstituted C 1 -C 6 -alkyl,

(3) substituted or unsubstituted aryl,

(4) substituted or unsubstituted heterocyclyl,

(5) substituted or unsubstituted heteroaryl,

(6) C 1 -C 6 -alkyl substituted with aryl,

(7) C 1 -C 6 -alkyl substituted with heterocyclyl,

(8) C 1 -C 6 -alkyl substituted with heteroaryl,

or R 1 and R 2 together with the N atom to which they are attached can form a substituted or unsubstituted heterocyclic ring, having from 3 to 10 ring atoms, wherein 1-2 ring atoms of the heterocyclic ring system are selected from N, O and S.

In another embodiment, the present invention provides compounds of formula XIV:

or stereoisomers, pharmaceutically acceptable salts, esters, and prodrugs thereof, wherein D-G-Y taken together is selected from the group consisting of

Wherein

R is selected from the group consisting of —CH 3 , —C 2 H 5 , —CH 2 OH, —OH, —OCH 3 , —OC 2 H 5 , —OCF 3 , —CN, —NO 2 , —CO 2 H, —CO 2 CH 3 , —CONH 2 , —NH 2 , —F, —Cl, —Br, —CF 3 , —N(CH 3 ) 2 , —NHSO 2 CH 3 , and —NHCOCH 3 ;

R 4 is selected from the group consisting of

(1) H,

(2) substituted or unsubstituted C 1 -C 6 -alkyl,

(3) C 1 -C 6 -alkyl substituted with aryl,

(4) C 1 -C 6 -alkyl substituted with heterocyclyl, and

(5) C 1 -C 6 -alkyl substituted with heteroaryl.

In another embodiment, the present invention provides compounds of formula XV:

or stereoisomers, pharmaceutically acceptable salts, esters, and prodrugs thereof, wherein D-G-Y taken together, is selected from the group consisting of

Wherein

R is selected from the group consisting of —CH 3 , —C 2 H 5 , —CH 2 OH, —OH, —OCH 3 , —OC 2 H 5 , —OCF 3 , —CN, —NO 2 , —CO 2 H, —CO 2 CH 3 , —CONH 2 , —NH 2 , —F, —Cl, —Br, —CF 3 , —N(CH 3 ) 2 , —NHSO 2 CH 3 , and —NHCOCH 3 ;

In another embodiment, the present invention provides compounds of formula XVI:

or stereoisomers, pharmaceutically acceptable salts, esters, and prodrugs thereof, wherein D-G-Y taken together, is selected from the group consisting of

Wherein

R is selected from the group consisting of —CH 3 , —C 2 H 5 , —CH 2 OH, —OH, —OCH 3 , —OC 2 H 5 , —OCF 3 , —CN, —NO 2 , —CO 2 H, —CO 2 CH 3 , —CONH 2 , —NH 2 , —F, —Cl, —Br, —CF 3 , —N(CH 3 ) 2 , —NHSO 2 CH 3 , and —NHCOCH 3 ;

R 4 is selected from the group consisting of

(1) H,

(2) substituted or unsubstituted C 1 -C 6 -alkyl,

(3) C 1 -C 6 -alkyl substituted with aryl,

(4) C 1 -C 6 -alkyl substituted with heterocyclyl, and

(5) C 1 -C 6 -alkyl substituted with heteroaryl;

In another embodiment, the present invention provides compounds of formula XVII:

or stereoisomers, pharmaceutically acceptable salts, esters, and prodrugs thereof, wherein D-G-Y taken together, is selected from the group consisting of

Wherein

R is selected from the group consisting of —CH 3 , —C 2 H 5 , —CH 2 OH, —OH, —OCH 3 , —OC 2 H 5 , —OCF 3 , —CN, —NO 2 , —CO 2 H, —CO 2 CH 3 , —CONH 2 , —NH 2 , —F, —Cl, —Br, —CF 3 , —N(CH 3 ) 2 , —NHSO 2 CH 3 , and —NHCOCH 3 ;

In one aspect, the invention provides a method of inhibiting a deacetylase enzyme in a gram-negative bacteria, thereby affecting bacterial growth, comprising administering to a patient in need of such inhibition a compound of formula I.

In another aspect, the invention provides a method of inhibiting LpxC, thereby modulating the virulence of a bacterial infection, comprising administering to a patient in need of such inhibition a compound of formula I.

In some embodiments of the method of inhibiting LpxC using a compound of formula I, the IC 50 value of the compound is less than or equal to 10 μM with respect to LpxC. In other such embodiments, the IC 50 value is less than or equal to 1 μM, is less than or equal to 0.1 μM, is less than or equal to 0.050 μM, is less than or equal to 0.030 μM, is less than or equal to 0.025 μM, or is less than or equal to 0.010 μM.

In one aspect of the invention, methods for treating a subject comprising administering to the subject an antibacterially effective amount of a compound of formula I, together with a pharmaceutically acceptable carrier is provided. In a preferred embodiment of the method of treatment, the subject is a mammal and some embodiments, a human.

In another aspect, the invention provides a method of administering an inhibitory amount of a compound of formula I to fermentative or non-fermentative gram-negative bacteria. In a preferred embodiment of the method of administering an inhibitory amount of a compound of formula I to fermentative or non-fermentative gram-negative bacteria, the gram-negative bacteria are selected from the group consisting of Pseudomonas aeruginosa, Stenotrophomonas maltophila, Burkholderia cepacia, Alcaligenes xylosoxidans, Acinetobacter , Enterobacteriaceae, Haemophilus, Neisseria species.

In another embodiment, the invention provides a method of administering an inhibitory amount of a compound of formula I to gram-negative bacteria, such as Enterobacteriaceae that is selected from the group consisting of organisms such as Serratia, Proteus, Klebsiella, Enterobacter, Citrobacter, Salmonella, Providencia, Morganella, Cedecea , and Edwardsiella species and Escherichia coli.

›DETAILED DESCRIPTION · 10 of 15

Another embodiment of the invention provides a pharmaceutical composition comprising an effective amount of a compound of Formula I with a pharmaceutically acceptable carrier thereof.

Pharmaceutical formulations according to the present invention are provided which include any of the compounds described above in combination with a pharmaceutically acceptable carrier.

Another embodiment of the invention provides a method of co-administering the compound of formula I with other therapeutic agents that are selected for their particular usefulness against the condition that is being treated.

For example, the compound of formula I is useful in combination with other anti-bacterial agents. The compound of formula I augments the sensitivity of gram-negative bacteria to existing classes of antibacterials. Combinations of the presently disclosed compounds with other anti-bacterial agents are within the scope of the invention. Such anti-bacterial agents include, but are not limited to, erythromycin, rifampicin, Nalidixic acid, carbenicillin, bacitracin, cycloserine, fosfomycin, and vancomycin.

A further aspect of the invention is the use of LpxC inhibitors for the treatment of an infection, particularly a bacterial infection. A bacterial infection treated with the compounds of the invention can be a primary infection or a co-infection caused by a species of bacteria and one or more additional infectious agents selected from the group consisting of bacteria, virus, parasite and fungus.

The term “treating”, as used herein, refers to reversing, alleviating, inhibiting the progress of, or preventing the disorder or condition to which such term applies, or one or more symptoms of such disorder or condition. The term “treatment”, as used herein, refers to the act of treating, as “treating” is defined immediately above.

The compounds of the invention can be used for treating conditions caused by the bacterial production of endotoxin and, in particular, by gram-negative bacteria and bacteria that use LpxC in the biosynthesis of lipopolysaccharide (LPS) or endotoxin.

The compounds of the invention also are useful in the conditions that are caused or exacerbated by the bacterial production of lipid A and LPS or endotoxin, such as sepsis, septic shock, systemic inflammation, localized inflammation, chronic obstructive pulmonary disease (COPD) and acute exacerbations of chronic bronchitis (AECB). For these conditions, treatment includes the administration of a compound of the invention, or a combination of compounds of the invention, optionally with a second agent wherein the second agent is a second antibacterial agent or a second non-antibacterial agent.

For sepsis, septic shock, systemic inflammation, localized inflammation, chronic obstructive pulmonary disease (COPD) and acute exacerbations of chronic bronchitis (AECB), preferred second non-antibacterial agents include antiendotoxins including endotoxin receptor-binding antibodies, endotoxin-binding antibodies, antiCD14-binding protein antibodies antilipopolysaccharide-binding protein antibodies and tyrosine kinase inhibitors.

In treatment of serious or chronic respiratory tract infections, the compounds of the present invention may also be used with second non-antibacterial agents administered via inhalation. Preferred non-antibacterial agents used in this treatment include anti-inflammatory steroids, non-steroidal anti-inflammatory agents, bronchiodilators, mucolytics, anti-asthma therapeutics and lung fluid surfactants. In particular, the non-antibacterial agent may be selected from a group consisting of albuterol, salbuterol, budesonide, beclomethasone, dexamethasone, nedocromil, beclomethasone, fluticasone, flunisolide, triamcinolone, ibuprofin, rofecoxib, naproxen, celecoxib, nedocromil, ipratropium, metaproterenol, pirbuterol, salmeterol, bronchiodilators, mucolytics, calfactant, beractant, poractant alfa, surfaxin and pulmozyme (also called dornase alfa).

The compounds of the invention can be used, alone or in combination with a second antibacterial agent for the treatment of a serious or chronic respiratory tract infection including serious lung and nosocomial infections such as those caused by Enterobacter aerogenes, Enterobacter cloacae, Escherichia coli, Klebsiella pneumoniae, Klebsiella oxytoca, Proteus mirabilis, Serratia marcescens, Stenotrophomonas maltopbilia, Pseudomonas aeruginosa, Burkholderia cepacia, Acinetobacter calcoaceticus, Alcaligenes xylosoxidans, Flavobacterium meningosepticum, Providencia stuartii and Citrobacter freundi , community lung infections such as those caused by Haemophilus Influenzae, Legionella species, Moraxella catarrhalis, Branhamella catarrhalis, Enterobacter species, Acinetobacter species, Klebsiella species, and Proteus species, and infections caused by other bacterial species such as Neisseria species, Shigella species, Salmonella species, Helicobacter pylori , Vibrionaceae and Bordetella species as well as the infections is caused by a Brucella species, Francisella tularensis and/or Yersinia Pestis.

When used for treating Gram-negative bacteria, the compounds of the present invention can be used to sensitize gram-negative bacteria to the effects of a second agent.

When the compounds of the present invention are used in combination with a second antibacterial agent, non-limiting examples of antibacterial agents may be selected from the following groups:

(1) Macrolides or ketolides such as erythromycin, azithromycin, clarithromycin and telithromycin; (2) Beta-lactams including penicillin, cephalosporin, and carbapenems such as carbapenem, imipenem, and meropenem; (3) Monobactams such as penicillin G, penicillin V, methicillin, oxacillin, cloxacillin, dicloxacillin, nafcillin, ampicillin, amoxicillin, carbenicillin, ticarcillin, mezlocillin, piperacillin, azlocillin, temocillin, cepalothin, cephapirin, cephradine, cephaloridine, cefazolin, cefamandole, cefuroxime, cephalexin, cefprozil, cefaclor, loracarbef, cefoxitin, cefmetazole, cefotaxime, ceftizoxime, ceftriaxone, cefoperazone, ceftazidime, cefixime, cefpodoxime, ceftibuten, cefdinir, cefpirome, cefepime, and astreonam; (4) Quinolones such as nalidixic acid, oxolinic acid, norfloxacin, pefloxacin, enoxacin, ofloxacin, levofloxacin, ciprofloxacin, temafloxacin, lomefloxacin, fleroxacin, grepafloxacin, sparfloxacin, trovafloxacin, clinafloxacin, gatifloxacin, moxifloxacin, sitafloxacin, ganefloxacin, gemifloxacin and pazufloxacin; (5) Antibacterial sulfonamides and antibacterial sulphanilamides, including para-aminobenzoic acid, sulfadiazine, sulfisoxazole, sulfamethoxazole and sulfathalidine; (6) Aminoglycosides such as streptomycin, neomycin, kanamycin, paromycin, gentamicin, tobramycin, amikacin, netilmicin, spectmomycin, sisomicin, dibekalin and iseparmicin; (7) Tetracyclines such as tetracycline, chlortetracycline, demeclocycline, minocycline, oxytetracycline, methacycline, doxycycline; (8) Rifamycins such as rifampicin (also called rifampin), rifapentine, rifabutin, bezoxazinorifamycin and rifaximin; (9) Lincosamides such as lincomycin and clindamycin; (10) Glycopeptides such as vancomycin and teicoplanin; (11) Streptogramins such as quinupristin and daflopristin; (12) Oxazolidinones such as linezolid; (13) Polymyxin, colistin and colymycin; (14) Trimethoprim and bacitracin.

›DETAILED DESCRIPTION · 11 of 15

The second antibacterial agent may be administered in combination with the compounds of the present inventions wherein the second antibacterial agent is administered prior to, simultaneously, or after the compound or compounds of the present invention. When simultaneous administration of a compound of the invention with a second agent is desired and the route of administration is the same, then a compound of the invention may be formulated with a second agent into the same dosage form. An example of a dosage form containing a compound of the invention and a second agent is a tablet or a capsule.

When used for treating a serious or chronic respiratory tract infections, the compounds of the invention may be used alone or in combination with a second antibacterial agent administered via inhalation. In the case of inhalation, a preferred second antibacterial agent is selected from a group consisting of tobramycin, gentamicin, aztreonam, ciprofloxacin, polymyxin, colistin, colymycin, azithromycin and clarithromycin.

Pharmaceutical Compositions

Pharmaceutical compositions of the present invention comprise a therapeutically effective amount of a compound of the present invention formulated together with one or more pharmaceutically acceptable carriers. As used herein, the term “pharmaceutically acceptable carrier” means a non-toxic, inert solid, semi-solid or liquid filler, diluent, encapsulating material or formulation auxiliary of any type. Some examples of materials that can serve as pharmaceutically acceptable carriers are sugars such as lactose, glucose and sucrose; starches such as corn starch and potato starch; cellulose and its derivatives such as sodium carboxymethyl cellulose, ethyl cellulose and cellulose acetate; powdered tragacanth; malt; gelatin; talc; excipients such as cocoa butter and suppository waxes; oils such as peanut oil, cottonseed oil; safflower oil; sesame oil; olive oil; corn oil and soybean oil; glycols; such a propylene glycol; esters such as ethyl oleate and ethyl laurate; agar; buffering agents such as magnesium hydroxide and aluminum hydroxide; alginic acid; pyrogen-free water, isotonic saline; Ringer's solution; ethyl alcohol, and phosphate buffer solutions, as well as other non-toxic compatible lubricants such as sodium lauryl sulfate and magnesium stearate, as well as coloring agents, releasing agents, coating agents, sweetening, flavoring and perfuming agents, preservatives and antioxidants can also be present in the composition, according to the judgment of the formulator. The pharmaceutical compositions of this invention can be administered to humans and other animals orally, rectally, parenterally, intracisternally, intravaginally, intraperitoneally, topically (as by powders, ointments, or drops), bucally, or as an oral or nasal spray, or a liquid aerosol or dry powder formulation for inhalation.

Liquid dosage forms for oral administration include pharmaceutically acceptable emulsions, microemulsions, solutions, suspensions, syrups and elixirs. In addition to the active compounds, the liquid dosage forms may contain inert diluents commonly used in the art such as, for example, water or other solvents, solubilizing agents and emulsifiers such as ethyl alcohol, isopropyl alcohol, ethyl carbonate, ethyl acetate, benzyl alcohol, benzyl benzoate, propylene glycol, 1,3-butylene glycol, dimethylformamide, oils (in particular, cottonseed, groundnut, corn, germ, olive, castor, and sesame oils), glycerol, tetrahydrofurfuryl alcohol, polyethylene glycols and fatty acid esters of sorbitan, and mixtures thereof. Besides inert diluents, the oral compositions can also include adjuvants such as wetting agents, emulsifying and suspending agents, sweetening, Savoring, and perfuming agents.

Injectable preparations, for example, sterile injectable aqueous or oleaginous suspensions may be formulated according to the known art using suitable dispersing or wetting agents and suspending agents. The sterile injectable preparation may also be a sterile injectable solution, suspension or emulsion in a nontoxic parenterally acceptable diluent or solvent, for example, as a solution in 1,3-butanediol. Among the acceptable vehicles and solvents that may be employed are water, Ringer's solution, U.S.P. and isotonic sodium chloride solution. In addition, sterile, fixed oils are conventionally employed as a solvent or suspending medium. For this purpose any bland fixed oil can be employed including synthetic mono- or diglycerides. In addition, fatty acids such as oleic acid are used in the preparation of injectable.

The injectable formulations can be sterilized, for example, by filtration through a bacterial-retaining filter, or by incorporating sterilizing agents in the form of sterile solid compositions that can be dissolved or dispersed in sterile water or other sterile injectable medium prior to use.

In order to prolong the effect of a drug, it is often desirable to slow the absorption of the drug from subcutaneous or intramuscular injection. This may be accomplished by the use of a liquid suspension of crystalline or amorphous material with poor water solubility. The rate of absorption of the drug then depends upon its rate of dissolution that, in turn, may depend upon crystal size and crystalline form. Alternatively, delayed absorption of a parenterally administered drug form may be accomplished by dissolving or suspending the drug in an oil vehicle. Injectable depot forms are made by forming microencapsule matrices of the drug in biodegradable polymers such as polylactide-polyglycolide. Depending upon the ratio of drug to polymer and the nature of the particular polymer employed, the rate of drug release can be controlled. Examples of other biodegradable polymers include poly(orthoesters) and poly(anhydrides). Depot injectable formulations may also be prepared by entrapping the drug in liposomes or microemulsions that are compatible with body tissues.

Compositions for rectal or vaginal administration are preferably suppositories that can be prepared by mixing the compounds of this invention with suitable non-irritating excipients or carriers such as cocoa butter, polyethylene glycol or a suppository wax which are solid at ambient temperature but liquid at body temperature and therefore melt in the rectum or vaginal cavity and release the active compound.

›DETAILED DESCRIPTION · 12 of 15

Solid dosage forms for oral administration include capsules, tablets, pills, powders, and granules. In such solid dosage forms, the active compound is mixed with at least one inert, pharmaceutically acceptable excipient or carrier such as sodium citrate or dicalcium phosphate and/or a) fillers or extenders such as starches, lactose, sucrose, glucose, mannitol, and silicic acid, b) binders such as, for example, carboxymethylcellulose, alginates, gelatin, polyvinylpyrrolidinone, sucrose, and acacia, c) humectants such as glycerol, d) disintegrating agents such as agar-agar, calcium carbonate, potato or tapioca starch, alginic acid, certain silicates, and sodium carbonate, e) solution retarding agents such as paraffin, f) absorption accelerators such as quaternary ammonium compounds, g) wetting agents such as, for example, acetyl alcohol and glycerol monostearate, h) absorbents such as kaolin and bentonite clay, and i) lubricants such as talc, calcium stearate, magnesium stearate, solid polyethylene glycols, sodium lauryl sulfate, and mixtures thereof. In the case of capsules, tablets and pills, the dosage form may also comprise buffering agents.

Solid compositions of a similar type may also be employed as fillers in soft and hard-filled gelatin capsules using such excipients as lactose or milk sugar as well as high molecular weight polyethylene glycols and the like.

The solid dosage forms of tablets, dragees, capsules, pills, and granules can be prepared with coatings and shells such as enteric coatings and other coatings well known in the pharmaceutical formulating art. They may optionally contain opacifying agents and can also be of a composition that they release the active ingredients) only, or preferentially, in a certain part of the intestinal tract, optionally, in a delayed manner. Examples of embedding compositions that can be used include polymeric substances and waxes.

Solid compositions of a similar type may also be employed as fillers in soft and hard-filled gelatin capsules using such excipients as lactose or milk sugar as well as high molecular weight polyethylene glycols and the like.

The active compounds can also be in micro-encapsulated form with one or more excipients as noted above. The solid dosage forms of tablets, dragees, capsules, pills, and granules can be prepared with coatings and shells such as enteric coatings, release controlling coatings and other coatings well known in the pharmaceutical formulating art. In such solid dosage forms the active compound may be admixed with at least one inert diluent such as sucrose, lactose or starch. Such dosage forms may also comprise, as is normal practice, additional substances other than inert diluents, e.g., tableting lubricants and other tableting aids such a magnesium stearate and microcrystalline cellulose. In the case of capsules, tablets and pills, the dosage forms may also comprise buffering agents. They may optionally contain opacifying agents and can also be of a composition that they release the active ingredients) only, or preferentially, in a certain part of the intestinal tract, optionally, in a delayed manner. Examples of embedding compositions that can be used include polymeric substances and waxes.

Dosage forms for topical or transdermal administration of a compound of this invention include ointments, pastes, creams, lotions, gels, powders, solutions, sprays, inhalants or patches. The active component is admixed under sterile conditions with a pharmaceutically acceptable carrier and any needed preservatives or buffers as may be required. Ophthalmic formulations, ear drops, and the like are also contemplated as being within the scope of this invention.

The ointments, pastes, creams and gels may contain, in addition to an active compound of this invention, excipients such as animal and vegetable fats, oils, waxes, paraffins, starch, tragacanth, cellulose derivatives, polyethylene glycols, silicones, bentonites, silicic acid, talc and zinc oxide, or mixtures thereof.

Compositions of the invention may also be formulated for delivery as a liquid aerosol or inhalable dry powder. Liquid aerosol formulations may be nebulized predominantly into particle sizes that can be delivered to the terminal and respiratory bronchioles where bacteria reside in patients with bronchial infections, such as chronic bronchitis and pneumonia. Pathogenic bacteria are commonly present throughout airways down to bronchi, bronchioli and lung parenchema, particularly in terminal and respiratory bronchioles. During exacerbation of infection, bacteria can also be present in alveoli. Liquid aerosol and inhalable dry powder formulations are preferably delivered throughout the endobronchial tree to the terminal bronchioles and eventually to the parenchymal tissue.

Aerosolized formulations of the invention may be delivered using an aerosol forming device, such as a jet, vibrating porous plate or ultrasonic nebulizer, preferably selected to allow the formation of a aerosol particles having with a mass medium average diameter predominantly between 1 to 5 μm. Further, the formulation preferably has balanced osmolality ionic strength and chloride concentration, and the smallest aerosolizable volume able to deliver effective dose of the compounds of the invention to the site of the infection. Additionally, the aerosolized formulation preferably does not impair negatively the functionality of the airways and does not cause undesirable side effects.

Aerosolization devices suitable for administration of aerosol formulations of the invention include, for example, jet, vibrating porous plate, ultrasonic nebulizers and energized dry powder inhalers, that are able to nebulize the formulation of the invention into aerosol particle size predominantly in the size range from 1-5 μm. Predominantly is this application means that at least 70% but preferably more than 90% of all generated aerosol particles are 1 to 5 μm range. A jet nebulizer works by air pressure to break a liquid solution into aerosol droplets. Vibrating porous plate nebulizers work by using a sonic vacuum produced by a rapidly vibrating porous plate to extrude a solvent droplet through a porous plate. An ultrasonic nebulizer works by a piezoelectric crystal that shears a liquid into small aerosol droplets. A variety of suitable devices are available, including, for example, AeroNeb and AeroDose vibrating porous plate nebulizers (AeroGen, Inc., Sunnyvale, Calif.), Sidestream7 nebulizers (Medic-Aid Ltd., West Sussex, England), Pari LC7 and Pari LC Star7 jet nebulizers (Pari Respiratory Equipment, Inc., Richmond, Va.), and Aerosonic (DeVilbiss Medizinische Produkte (Deutschland) GmbH, Heiden, Germany) and UltraAire7 (Omron Healthcare, Inc., Vernon Hills, Ill.) ultrasonic nebulizers.

›DETAILED DESCRIPTION · 13 of 15

Compounds of the invention may also be formulated for use as topical powders and sprays that can contain, in addition to the compounds of this invention, excipients such as lactose, talc, silicic acid, aluminum hydroxide, calcium silicates and polyamide powder, or mixtures of these substances. Sprays can additionally contain customary propellants such as chlorofluorohydrocarbons.

Transdermal patches have the added advantage of providing controlled delivery of a compound to the body. Such dosage forms can be made by dissolving or dispensing the compound in the proper medium. Absorption enhancers can also be used to increase the flux of the compound across the skin. The rate can be controlled by either providing a rate controlling membrane or by dispersing the compound in a polymer matrix or gel.

According to the methods of treatment of the present invention, bacterial infections are treated or prevented in a patient such as a human or lower mammal by administering to the patient a therapeutically effective amount of a compound of the invention, in such amounts and for such time as is necessary to achieve the desired result. By a “therapeutically effective amount” of a compound of the invention is meant a sufficient amount of the compound to treat bacterial infections, at a reasonable benefit/risk ratio applicable to any medical treatment It will be understood, however, that the total daily usage of the compounds and compositions of the present invention will be decided by the attending physician within the scope of sound medical judgment. The specific therapeutically effective dose level for any particular patient will depend upon a variety of factors including the disorder being treated and the severity of the disorder; the activity of the specific compound employed; the specific composition employed; the age, body weight, general health, sex and diet of the patient; the time of administration, route of administration, and rate of excretion of the specific compound employed; the duration of the treatment; drugs used in combination or coincidental with the specific compound employed; and like factors well known in the medical arts.

The total daily dose of the compounds of this invention administered to a human or other mammal in single or in divided doses can be in amounts, for example, from 0.01 to 50 mg/kg body weight or more usually from 0.1 to 25 mg/kg body weight. Single dose compositions may contain such amounts or submultiples thereof to make up the daily dose, in general, treatment regimens according to the present invention comprise administration to a patient in need of such treatment from about 10 mg to about 2000 mg of the compound(s) of this invention per day in single or multiple doses.

Methods of formulation are well known in the art and are disclosed, for example, in Remington: The Science and Practice of Pharmacy, Mack Publishing Company, Easton, Pa., 19th Edition (1995). Pharmaceutical compositions for use in the present invention can be in the form of sterile, non-pyrogenic liquid solutions or suspensions, coated capsules, suppositories, lyophilized powders, transdermal patches or other forms known in the art.

A “kit” as used in the instant application includes a container for containing the pharmaceutical compositions and may also include divided containers such as a divided bottle or a divided foil packet. The container can be in any conventional shape or form as known in the art that is made of a pharmaceutically acceptable material, for example a paper or cardboard box, a glass or plastic bottle or jar, a resealable bag (for example, to hold a “refill” of tablets for placement into a different container), or a blister pack with individual doses for pressing out of the pack according to a therapeutic schedule, the container employed can depend on the exact dosage form involved, for example a conventional cardboard box would not generally be used to hold a liquid suspension. It is feasible that more than one container can be used together in a single package to market a single dosage form. For example, tablets may be contained in a bottle that is in turn contained within a box.

An example of such a kit is a so-called blister pack. Blister packs are well known in the packaging industry and are being widely used for the packaging of pharmaceutical unit dosage forms (tablets, capsules, and the like). Blister packs generally consist of a sheet of relatively stiff material covered with a foil of a preferably transparent plastic material. During the packaging process, recesses are formed in the plastic foil. The recesses have the size and shape of individual tablets or capsules to be packed or may have the size and shape to accommodate multiple tablets and/or capsules to be packed. Next, the tablets or capsules are placed in the recesses accordingly and the sheet of relatively stiff material is sealed against the plastic foil at the face of the foil that is opposite from the direction in which the recesses were formed. As a result, the tablets or capsules are individually sealed or collectively sealed, as desired, in the recesses between the plastic foil and the sheet. Preferably the strength of the sheet is such that the tablets or capsules can be removed from the blister pack by manually applying pressure on the recesses whereby an opening is formed in the sheet at the place of the recess. The tablet or capsule can then be removed via said opening.

It maybe desirable to provide a written memory aid, where the written memory aid is of the type containing information and/or instructions for the physician, pharmacist or other health care provider, or subject, e.g., in the form of numbers next to the tablets or capsules whereby the numbers correspond with the days of the regimen that the tablets or capsules so specified should be ingested or a card that contains the same type of information. Another example of such a memory aid is a calendar printed on the card e.g., as follows “First Week, Monday, Tuesday,” . . . etc. . . . “Second Week, Monday, Tuesday, . . . ” etc. Other variations of memory aids will be readily apparent A “dairy dose” can be a single tablet or capsule or several tablets or capsules to be taken on a given day. When the kit contains separate compositions, a daily dose of one or more compositions of the kit can consist of one tablet or capsule while a daily dose of another one or more compositions of the kit can consist of several tablets or capsules.

›DETAILED DESCRIPTION · 14 of 15

Another specific embodiment of a kit is a dispenser designed to dispense the daily doses one at a time in the order of their intended use. Preferably, the dispenser is equipped with a memory-aid, so as to further facilitate compliance with the regimen. An example of such a memory-aid is a mechanical counter, that indicates the number of daily doses that has been dispensed. Another example of such a memory-aid is a battery-powered micro-chip memory coupled with a liquid crystal readout, or audible reminder signal mat, for example, reads out the date that the last daily dose has been taken and/or reminds one when the next dose is to be taken.

The kits of the present invention may also include, in addition to LpxC inhibitors, one or more additional pharmaceutically active compounds. Preferably, the additional compound is another LpxC inhibitor or another compound useful to bacterial infections. The additional compounds may be administered in the same dosage form as the LpxC inhibitor or in different dosage forms. Likewise, the additional compounds can be administered at the same time as the LpxC inhibitor or at different times.

Compositions of the present compounds may also be used in combination with other known antibacterial agents of similar spectrum to (1) synergistically enhance treatment of severe Gram-negative infections covered by the spectrum of this compound or (2) add coverage in severe infections in which multiple organisms are suspected in which another agent of a different spectrum may be required in addition to this compound. Potential agents include members of the aminoglycosides, penicillins, cephalosporins, fluoroquinolones, macrolides, glycopeptides, lipopeptides and oxazolidinones. The treatment can involve administering a composition having both active agents or administration of the inventive compounds followed by or preceded by administration of an additional active antibacterial agent.

Characterization and Purification Methods

Referring to the examples that follow, compounds of the present invention were characterized by high performance liquid chromatography (HPLC) using a Waters Millennium chromatography system with a 2690 Separation Module (Milford, Mass.). The analytical columns were Alltima C-18 reversed phase, 4.6×250 mm from Alltech (Deerfield, Ill.). A gradient elution was used, typically starting with 5% acetonitrile/95% water and progressing to 100% acetonitrile over a period of 40 minutes. All solvents contained 0.1% trifluoroacetic acid (TFA). Compounds were detected by ultraviolet light (UV) absorption at either 220 or 254 nm. HPLC solvents were from Burdick and Jackson (Muskegan, Mich.), or Fisher Scientific (Pittsburgh, Pa.). In some instances, purity was assessed by thin layer chromatography (TLC) using glass or plastic backed silica gel plates, such as, for example, Baker-Flex Silica Gel 1B2-F flexible sheets. TLC results were readily detected visually under ultraviolet light, or by employing well known iodine vapor and other various staining techniques.

Mass spectrometric analysis was performed on one of two LCMS instruments: a Waters System (Alliance HT HPLC and a Micromass ZQ mass spectrometer, Column: Eclipse XDB-C18, 2.1×50 mm; solvent system: 5-95% (or 35-95%, or 65-95% or 95-95%) acetonitrile in water with 0.05% TFA; flow rate 0.8 mL/min; molecular weight range 500-1500; cone Voltage 20 V; column temperature 40° C.) or a Hewlett Packard System (Series 1100 HPLC; Column: Eclipse XDB-C18, 2.1×0.50 mm; solvent system: 1-95% acetonitrile in water with 0.05% TFA; flow rate 0.4 mL/min; molecular weight range 150-850; cone Voltage 50 V; column temperature 30° C.). All masses are reported as those of the protonated parent ions.

GCMS analysis was performed on a Hewlett Packard instrument (HP6890 Series gas chromatograph with a Mass Selective Detector 5973; injector volume: 1 μL; initial column temperature: 50° C.; final column temperature: 250 C; ramp time: 20 minutes; gas flow rate: 1 mL/min; column: 5% phenyl methyl siloxane, Model #HP 190915-443, dimensions: 30.0 m×25 m×0.25 m).

Nuclear magnetic resonance (NMR) analysts was performed with a Varian 300 Mhz NMR (Palo Alto, Calif.). The spectral reference was either TMS or the known chemical shift of the solvent. Some compound samples were run at elevated temperatures (e.g. 75° C.) to promote increased sample solubility.

The purity of some of the invention compounds was assessed by elemental analysis (Desert Analytics, Tuscon, Ariz.)

Melting points were determined on a Laboratory Devices Mel-Temp apparatus (Holliston, Mass.).

Preparative separations were carried out using a Flash 40 chromatography system and KP-Sil, 60A (Biotage, Charlottesville, Va.), or by flash column chromatography using silica gel (230-400 mesh) packing material, or by HPLC using a C-18 reversed phase column. Typical solvents employed for the Flash 40 Biotage system and flash column chromatography were dichloromethane, methanol, ethyl acetate, hexane, acetone, aqueous hydroxyamine and triethyl amine. Typical solvents employed for the reverse phase HPLC were varying concentrations of acetonitrile and water with 0.1% trifluoroacetic acid.

Compounds of the present invention can be readily synthesized using the methods described herein, or other methods, that are well known in the art. For example, the synthesis of hydroxamic acids or similar scaffolds having a wide variety of substituents are comprehensively reviewed in Kline T, Andersen N H, Harwood E A, Bowman J, Malanda A, Endsley S, Erwin A L, Doyle M, Fong S, Harris A L, Mendelsohn B, Mdluli K, Raetz C R, Stover C K, Witte P R, Yabannavar A, Zhu S., “Potent, novel in vitro inhibitors of the Pseudomonas aeruginosa deacetylase LpxC,” J Med Chem 2002 Jul. 4; 45 (14):3112-29; Patchett, A. A., Nargund, R., Chen, M.-H., Nishi, H. R., U.S. Pat. No. 5,925,659, 1999; Pirrung, M. C., Chau, J. H., “A Convenient Procedure for the Preparation of Amino Acid Hydroxamates from Esters,” J. Org. Chem. 1995, 60, 8084-8085; Nhu, K., Patel, D. V., “A New and Efficient Solid Phase Synthesis of Hydroxamic Acids,” J. Org. Chem. 1997, 62, 7088-7089; Patel, D., Nhu, K., “Methods for Solid-phase Synthesis of Hydroxylamine Compounds and Derivatives, and Combinatorial Libraries Thereof,” PCT WO98/18754, 1998, Mellor, S. L., McGuire, C, Chan, W. C., “N-Fmoc-aminoxy-2-chlortrityl Polystyrene Resin: A Facile Solid-phase Methodology for the Synthesis of Hydroxamic Acids,” Tetrahedron Lett., 1997, 38, 3311-3314; Khan, S. L., Grinstaff, M. W., “A Facile and Convenient Solid-phase Procedure for Synthesizing Nucleoside Hydroxamic Acids,” Tetrahedron. Lett., 1998, 39, 8031-8034; Zhang, Y., Li, D., Houtman, J. C., Witiak, D. T., Seltzer, J., Berries, P. J., Lauhon, C. T., “Design, Combinatorial Chemical Synthesis, and in vitro Characterization of Novel Urea Based Gelatinase Irihibitors,” Bioorg. Med. Chem. Lett, 1999, 9, 2823-2826; Ito, Y., Inubushi, Y., Zenbayashi, M., Tomita, S., Saegusa, T., “Synthetic Reactions by Complex Catalysts. XXXI, A Novel and Versatile Method of Heterocycle Synthesis,” J. Am Chem. Soc., 1973, 95, 4447-4448; Ito, Y., Ito, L, Hirao, T., Saegus, T., “Synthetic Reactions by Complex Catalysts XXXV,” Syn. Commun. 1974, 4, 97-103; Witte, H., Seliger, W., “Cyclische Imidsaurester aus Nitrilen und Aminoalkoholen,” Liebigs Ann. Chem, 1974, 996-1009; Pattenden, G., Thom. S. M., “Naturally Occurring Linear Fused Thiazoline-Thiazole Containing Metabolites: Total Synthesis of (−) Didehydromirabazole A, a Cytotoxic Alkaloid from Blue-Green Algae,” J. Chem. Soc. Perkin Trans 1, 1993, 1629-1636; Boyce, R. J., Mulqueen, G. C., Pattenden, G., “Total Synthesis of Thiangazole, A Novel Naturally Occurring HIV-1 Inhibitor from Polyangium sp.” Tetrahedron, 1995, 51, 7321-7330; Galeotti, N., Plagnes, E., Jouin, P., “Synthesis of Peptidyl Aldehydes from Thiazolines,” Tetrahedron. Lett. 1997, 38, 2459-2462; Charette, A. B., Chua, P., “Mild Method for the Synthesis of Thiazolines from Secondary and Tertiary Amides,” J. Org. Chem., 1998, 63, 908-909; Bergeron, R. J., Wiegand, J., McManis, J. S., McCosar, B. H., Weimar, W. R., Brittenham, G. M., Smith, R. E., “Effects of C-4 Stereochemistry and C-4′ Hydroxylation on the Iron Clearing Efficiency and Toxicity of Desferrithiocin Analogues,” J. Med. Chem. 1999, 42, 2432-2440; Raman, P., Razavik H., Kelly, J. W., “Titanium (IV)-mediated Tandem Deprotection-cyclodehydration of Protected Cysteine N-Amides: Biomimetic Synthesis of Thiazoline- and Thiazole-containing Heterocycles,” Org. Lett., 2000, 2, 3289-3292; Fernandez, X., Fellous, R., Dunach, E., “Novel Synthesis of 2-Thioazolines,” Tetrahedron Lett., 2000, 41, 3381-3384. Wipf, P., Miller, C. P., Venkatraman, S., Fritch, P., “C. Thiolysis of Oxazolinenes: A New, Selective Method for the Direct Conversion of Peptide Oxazolines into Thiazolines,” Tetrahedron Lett., 1995, 36, 6395-6398, which are incorporated herein by reference.

›DETAILED DESCRIPTION · 15 of 15

The synthesis of other non-hydroxamates compounds or more generally zinc binding groups are reviewed in Pirrung, M. C., Tumey, L. N., Raetz, C. R. H., Jackman, J. E., Snehalatha, K., McClerren, A. L., Fierke, C. A., Gantt, S. L., Rusche, K. M., “Inhibition of the Antibacterial Target UDP-(3-O-acyl)-N-acetylglucosamine Deacetylase (LpxC): Isoxazoline Zinc Amidase Inhibitors Bearing Diverse Metal Binding Groups,” Journal of Medicinal Chemistry (2002), 45 (19), 4359-4370; Jackman, J. E., Fierke, C. A., Tumey, L. N., Pirrung, M., Uchiyama, T., Tahir, S. H., Hindsgaul, O., Raetz, C. R. H., “Antibacterial agents that target lipid A biosynthesis in gram-negative bacteria: inhibition of diverse UDP-3-O—(R-3-hydroxymyristoyl)-N-acetylglucosamine deacetylases by substrate analogs containing zinc binding motifs,” Journal of Biological Chemistry (2000), 275 (15), 11002-11009; Brooks, C. D. W., Summers, J. B., “Modulators of Leukotriene Biosynthesis and Receptor Activation” Journal of Medicinal Chemistry (1996), 39 (14), 2629-2654; Jeng, A. Y., De Lombaert, S., “Endothelin converting enzyme inhibitors,” Current Pharmaceutical Design (1997), 3 (6), 597-614; Zask, A., Levin, J. L., Killar, L. M., Skothicki, J. S., “Inhibition of matrix metalloproteinases: structure based design,” Current Pharmaceutical Design (1996), 2 (6), 624-661; Skotnicki, J. S., DiGrandi, M. J., Levin, J. I., Chemical and Screening Sciences, Wyeth Research, New York, N.Y., USA. Current Opinion in Drug Discovery & Development (2003), 6 (5), 742-759.

The foregoing may be better understood by reference to the following examples, that are presented for illustration and not to limit the scope of the inventive concepts.

›EXAMPLES

The following are abbreviations used in the examples:

Nomenclature for the Example compounds was provided using ACD Name version 5.07 software (Nov. 14, 2001) available from Advanced Chemistry Development, Inc. Some of the compounds and starting materials were named using standard IUPAC nomenclature.

Synthesis of N-Aroyl Threonine Analogues and Formation of Hydroxamate

›Examples15
›Example 1

Synthesis of 3-bromo-4-fluoro-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino) carbonyl]propyl}benzamide (3)

Preparation of (2S,3R)-2-(3-bromo-4-fluoro-benzoylamino)-3-hydroxy-butyric acid methyl ester (2)

Diisopropylethylamine (6.8 mL, 39.0 mmol) was added to a stirred solution of 3-bromo-4-fluorobenzoic acid 1 (2.152 g, 9.83 mmol), L-threonine methyl ester hydrochloride (1.968 g, 11.6 mmol), EDCI (2218 g, 11.6 mmol) and HOBt (1.410 g, 10.4 mmol) in anhydrous DMF (60 ml) at 0° C. under N 2 . The solution was stirred at 0° C. for 1 h and at room temperature for 20 h. The solution was diluted with EtOAc (300 mL) and washed with 1.0 M HCl (2×80 mL), saturated NaHCO 3 (2×80 mL), H 2 O (4×80 mL), dried over MgSO 4 , filtered and concentrated in vacuo to give a colorless syrup which solidified on standing to afford 3.280 g (100%) of (2S,3R)-2-(3-bromo-4-fluoro-benzoylamino)-3-hydroxy-butyric acid methyl ester 2 as a white solid, mp 73-74° C. MS (ES+) m/z 333.9 (C 12 H 13 BrFNO 4 +H requires 334.00).

Preparation of 3-bromo-4-fluoro-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide (3)

To a solution of hydroxylamine hydrochloride (66 mg, 0.95 mmol) in anhydrous MeOH (2.0 mL) at 0° C. under N 2 atmosphere was added sodium methoxide (25 wt % in MeOH, 360 mg, 1.67 mmol). A precipitate formed immediately and the cloudy white solution was stirred for 10 minutes at 0° C. A solution of methyl (2S,3R)-2-[(3-bromo-4-fluorophenyl)carbonylamino]-3-hydroxybutanoate (2) (284 mg, 0.850 mmol) in MeOH (2.0 mL) was added and the reaction stirred 2 h at 0° C. and then warmed gradually to room temperature overnight (17 h total). Aqueous 1.0 M HCl (10 mL) was added and the solution extracted with 4:1 chloroform/isopropyl alcohol (4×20 mL). The organic layers were combined, dried over Na 2 SO 4 and concentrated to give a pink foam. The crude solid was triturated with diethyl ether (2×8 mL) and dried in vacuo to give 3-bromo-4-fluoro-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide 3 as a white foam: mp 152-153° C. Rf (10:1 CH 2 Cl 2 /MeOH on silica gel)=0.53.

Preparation of Hydroxamates

›Example 2

Synthesis of 4-benzoyl-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino) carbonyl]propyl}benzamide

Procedure:

To a solution of hydroxylamine hydrochloride (121 mg, 1.74 mmol) in anhydrous MeOH (2.0 mL) at 0° C. under N2 atmosphere was added sodium methoxide (25 wt % in MeOH, 680 mg, 3.14 mmol). A precipitate was immediately observed and the cloudy white solution was stirred for 10 minutes at 0° C. A solution of methyl (2S,3R)-3-hydroxy-2-{[4-(phenylcarbonyl)phenyl]carbonylamino}butanoate (1) (534 mg, 1.56 mmol) in MeOH (3.0 mL) was added and the reaction stirred 3 h at 0° C., then warmed gradually to ambient temperature overnight (18 h total). Aqueous 0.5 M HCl (20 mL) was added and the solution extracted with 5:1 chloroform/isopropyl alcohol (4×40 mL). The organic layers were combined, dried over Na 2 SO 4 and concentrated to give an orange foam. Purification by silica gel chromatography (increasing eluant polarity from 30:1 CH 2 Cl 2 /MeOH to 15:1 CH 2 Cl 2 /MeOH) afforded 228 mg (43%) of 4-benzoyl-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide.

›Example 3

Synthesis of (2R,3R)-3-hydroxy-1-{[4-(trifluoromethoxy)phenyl]carbonyl}pyrrolidine-2-carbohydroxamic acid

Preparation of ((2R,3R)-3-hydroxy-1-{[4-(trifluoromethoxy)phenyl]carbonyl}pyrrolidin-2-yl)-N-(phenylmethoxy)carboxamide (2)

Procedure:

To a solution of (2R,3R)-3-hydroxy-1-{[4-(trifluoromethoxy)phenyl]carbonyl}pyrrolidine-2-carboxylic acid (1) (405 mg, 1.27 mmol), benzylhydroxylamine hydrochloride (243 mg, 1.52 mmol), HATU (556 mg, 1.46 mmol), and HOBt (178 mg, 1.32 mmol) in DMF (10 mL) at 0° C. was added diisopropylethylamine (710 μL, 4.07 mmol) with stirring. The cooling bath was removed after one hour and the reaction mixture stirred at ambient temperature for 18 h and then diluted with EtOAc (200 mL). The organic layer was washed with 1.0 M HCl (2×60 mL), sat NaHCO 3 (2×60 mL) and H 2 O (5×60 mL), dried over MgSO 4 and concentrated to give 493 mg (92%) of ((2R,3R)-3-hydroxy-1-{[4-(trifluoromethoxy)phenyl]carbonyl}pyrrolidin-2-yl)-N-(phenylmethoxy)carboxamide (2), a colorless oil that slowly crystallized upon standing. Rf (25:1 CH 2 Cl 2 /MeOH)=0.35.

Preparation of (2R,3R)-3-hydroxy-1-{[4-(trifluoromethoxy)phenyl]carbonyl}pyrrolidine-2-carbohydroxamic acid (2)

Procedure:

To a solution of ((2R,3R)-3-hydroxy-1-{[4-(trifluoromethoxy)phenyl]carbonyl}pyrrolidin-2-yl)-N-(phenylmethoxy)carboxamide (1) (143 mg, 0.337 mmol) in EtOH (10 mL) was added 20% Pd(OH) 2 /C (50 mg). The solution was purged with hydrogen gas (approx. 0.5 L from a 1 L balloon) and then stirred under an atmosphere of H 2 (balloon pressure). TLC analysis showed no starting material after one hour. The solution was diluted with EtOAc (10 mL) and filtered through celite, washing with 20:1 EtOAc/EtOH (50 mL). The solution was concentrated and dried in vacuo to afford 90 mg (80%) of (2R,3R)-3-hydroxy-1-{[4-(trifluoromethoxy)phenyl]carbonyl}pyrrolidin-2-carbohydroxamic acid (2) as a sticky white foam: mp 64-65° C. Rf (10:1 CH 2 Cl 2 /MeOH)=0.29.

Synthesis of N-Benzyl Threonine Analogues by Reductive Amination

›Example 4

Synthesis of (2S,3R)-3-hydroxy-2-{[(4-phenylphenyl)methyl]amino}butanehydroxamic acid (3)

Triethylamine (1.70 mL, 12.1 mmol) was added to a stirred suspension of L-threonine methyl ester hydrochloride (1.030 g, 6.07 mmol) and 4-biphenylcarboxaldehyde (1.104 g, 6.06 mmol) in THF (25 mL). After 20 min, NaBH(OAc) 3 was added and the suspension stirred for 20 h. The reaction was monitored by TLC (50:1 DCM/MeOH, R f =0.4). The reaction mixture was quenched with saturated NaHCO 3 (50 mL), extracted with EtOAc (2×120 mL), dried over MgSO 4 , filtered and concentrated to give a yellow oil. Purification by silica gel chromatography (150:1 DCM/MeOH) afforded 1.220 g (67% yield, 98% pure) of (2S,3R)-2-[(biphenyl-4-ylmethyl)-amino]-3-hydroxy-butyric acid methyl ester 2 as a pale yellow oil.

HPLC (260 nm, 34 min run) 14.2 min; LRMS (ES+) mix 299.9 (C 18 H 21 NO 3 +H requires 300.10). Compound 3 was men formed by the addition of NH 2 OH in MeOH/NaOMe at 0° C., warming to ambient temperature of the period of several hours. LCMS MH+ 301.15.

General Methods for Making Phenyl-benzoic acids and Phenyl-benzoate esters (see Example 5 below)

Suzuki Procedures Using Pd(dppf)Cl 2 -DCM Catalyst and a THF/H 2 O Mixture

Reagent MW EQ g/ml mmol BromoArene #1 ~300 1    100 mg ~0.33 Boronic Acid #2  — 1.2  — ~0.40 Na 2 CO 3   105.99 3    104 m ~0.99 Pd(dppf)Cl 2   816.63 0.1-0.2 27-54 mg ~0.033-0.066 THF (3) (sparged with   0.75 ml argon for 5 min.) water(1) (sparged with   0.25 ml argon for 5 min.)

Standard Procedure

1 eq aryl halide (1) was added to 1.2 eq. (2) and Pd(dppf)Cl 2 in THF, followed by addition of water and stirred 8 hours at RT. Upon completion (usually over night), the reactions are diluted with ethyl acetate (5-10 ml) and water (1 ml). The organic layer is separated and washed with NaHCO 3 (2×3 ml), water (1×3 ml), brine (1×3 ml), dried with Na 2 SO 4 , filtered and concentrated in an 8 ml glass vial. The residue is dissolved in DMSO and injected on a preparatory HPLC reverse phase column to afford >80% yield.

Suzuki Procedures Using Pd(dppf)Cl 2 -DCM Catalyst and DMF Solvent

Reagent MW EQ g/ml mmol BromoArene #1 ~500 1   20 mg ~0.04 Boronic Acid #2 ~200 2 ~14 mg ~0.08 Pd(dppf)Cl 2 816.63 0.25   10 mg ~0.01-0.02 TEA 101.19 5   28 μL ~0.2 DMF (dry & sparged with argon  0.5 ml for 5 min.)

Standard Procedure

The haloarene 1 and boronic acid 2 were weighed out and placed in the reaction flask. The DMF was sparged with argon for 5-10 minutes, followed by TEA addition, and the reaction was lightly bubbled with argon. The solid Pd(dppf)Cl 2 catalyst was added in one portion. The vial was flushed with argon, capped tight and stirred or shaken at ˜80° C. Upon reaching completion (over night), the reaction was filtered and injected on a preparatory HPLC reverse phase column (80% yield).

Synthesis of Methyl DAP Analogues

›Example 5 · 1 of 2

3-(R)-Amino-2-(S)-[(4′-ethyl-biphenyl-4-carbonyl)-amino]-butyl-hydroxamic acid (8)

Preparation of N-triphenylmethyl allo-threonine methyl ester (2)

For similar procedures see: Righi, P.; Scardovi, N.; Marotta, E.; ten Holte, P.; Zwanenburg, B. Organic Letters 2002, 4 (4), 497-500.

A solution of trityl bromide (3.2 g, 10.0 mmol) in CHCl 3 (40 ml) was added dropwise to a stirred solution of allo-threonine methyl ester HCl salt (1) (2.0 g, 12.0 mmol) and DIEA (5.2 ml, 30.0 mmol) in CHCl 3 (60 ml) at rt under N 2 . The reaction could be followed by TLC eluting with EtOAc/Hex (40:60) (Rf=0.3). After stirring 12 h, the reaction was concentrated to a brown oil. The crude product was diluted with EtOAc (170 ml) and washed with 0.2 N citric acid (2×50 ml), water (2×50 ml), brine (50 ml), dried (Na 2 SO 4 ), filtered and concentrated under reduced pressure to yield 3.73 g (85% yield, 95% pure) of a yellow solid.

HPLC (220 nm, 41 min. run) 30.90 min.; HPLC (220 nm, 17 min. run) 14.86 min.; LCMS: LC (214 nm) 3.06 min., MS (ES+) m/z 376.2 (C 24 H 25 NO 3 +H requires 376.18).

Preparation of 3-(R)-Azido-2-(S)-(trityl-amino)-butyric acid methyl ester (3)

For similar procedures see: Matsuda, A.; Yasuoka, J.; Sasaki, T.; Ueda, T. J. Med. Chem. 1991, 34, 999-1002.

A solution of pure DEAD (2.9 ml, 17.8 mmol) in THF (5 ml) was added slowly dropwise to a stirred solution of trt-allo-threonine methyl ester (2) (4.1 g, 10.9 mmol) and PPh 3 (2.9 g, 10.9 mmol) in THF (40 ml) at 0° C. under N 2 . After 3 min., a solution of DPPA (6.4 ml, 29.7 mmol) in THF (5 ml) was added to the orange-yellow reaction solution at 0° C. After 1 h, the reaction was allowed to warm to rt. After 40 h, the reaction had reached completion by TLC (Hexane/DCM/EtOAc (64:20:16) (Rf=0.6)) and LCMS. The yellow solution was concentrated to give 18 g of crude material that was purified by column chromatography eluting with Hexane/EtOAc (88:12) giving 3.5 g of 70% pure product after evaporation. The product was purified again (to remove trityl alcohol and a crotyl side-product formed during the reaction by elimination) by column chromatography eluting with Hexane/DCM/EtOAc (76:20:4) giving 1.65 g (38% yield) of a pale yellow oil after concentration and drying in vacuo. Note that the trityl protecting group would hydrolyze when exposed to TFA while running the sample on HPLC.

Alternately, the reaction could be carried out in dry DCM. A reaction using 5.44 g (14.5 mmol) of trt-allo-threonine methyl ester (2) in DCM (100 ml) with PPh 3 (3.8 g, 14.5 mmol), pure DEAD (3.4 ml, 21.8 mmol) in DCM (5 ml) and DPPA (6.3 ml, 24.0 mmol) in DCM (10 ml) were combined following the procedure above. After 3 days, the reaction did not progress further by TLC and LCMS. After the same work up, 2.97 g of the product was obtained in 51% yield.

HPLC (220 nm, 41 min. run) 40.5 min.; HPLC (220 nm, 17 min. run) 16.32 min.; LCMS: LC (214 nm) 3.7 min., MS (ES+) m/z 401.2 (C 24 H 25 N 3 O 2 +H requires 401.15).

Preparation of 2-(S)-Amino-3-(R)-azido-butyric acid methyl ester HCl Salt (4)

A solution of Trt-Azido-Thr-OMe (3) (4.8 g, 12.0 mmol) was dissolved in a 95% TFA/DCM solution (60 ml) at rt with stirring. After 2.5 h, the reaction was complete by LCMS. The bright yellow solution was diluted with 0.5 N aq. HCl (300 ml). The aqueous layer was extracted with DCM (2×30 ml) and then lyophilized to dryness. The white solid was dissolved in AcCN/water (50:50) (100 ml) and again lyophilized to dryness to produce a consistent powder and remove as much of the TFA as possible. The azido-Thr-product (4), 2.26 g (97% yield, 95% pure) of a white solid, was obtained as the HCl salt.

HPLC (220 nm, 41 min. run) 7.91 min.; HPLC (220 nm, 17 min. run) 3.36 min; LCMS: LC (214 nm) 0.48 min., MS (ES+) m/z 159.3 (C 5 H 10 N 4 O 2 +H requires 159.08).

Preparation of 3-(R)-Azido-2-(S)-[(4′-ethyl-biphenyl-4-carbonyl)-amino]-butyric acid methyl ester (6)

A EDC.HCl (249 mg, 1.3 mmol) was added to a stirred colorless solution of azido-Thr-OMe-HCl (4) (195 mg, 11.0 mmol), HOBT (158 mg, 11.0 mmol), 4′-Ethyl-biphenyl-4-carboxylic acid (5) (226 mg, 11.0 mmol) and DIEA (0.44 ml, 2.5 mmol) in DCM (10 ml) at rt under N 2 . After 24 h, the reaction had reached completion by TLC (Hexane/EtOAc (60:40) (Rf=0.3)) and LCMS. The reaction was evaporated under reduced pressure to a brown tar. The crude product was dissolved in EtOAc (100 ml) and washed with 0.2 N aq. HCl (2×50 ml), aq. sat. NaHCO 3 (50 ml), brine (50 ml), dried (Na 2 SO 4 ), filtered and concentrated under reduced pressure to yield a crude brown solid. The crude material was further purified by column chromatography eluting with Hexane/EtOAc (70:30) giving 245 mg (67% yield) of pure product after evaporation and drying in vacuo.

HPLC (220 nm, 41 min. run) 33.87 min.; HPLC (220 nm, 17 min. run) 15.61 min; LCMS: LC (214 nm) 3.25 min., MS (ES+) m/z 367.2 (C 20 H 22 N 4 O 3 +H requires 367.17).

Preparation of 3-(R)-Amino-2-(S)-[(4′-ethyl-biphenyl-4-carbonyl)amino]-butyric acid methyl ester (7)

A solution of biphenyl azido-Thr methyl ester (6) (244 mg, 0.67 mmol) in MeOH (10 ml) was made by sonicating until the milky precipitate cleared. After bubbling nitrogen through the reaction solution for 30 sec., 10% Pd/C was added in one portion. The reaction was stirred under nitrogen at RT. The reaction was exposed to aspirator vacuum to remove the nitrogen and then opened to the hydrogen gas at balloon pressure (˜1 atm). The reaction stirred for 3 h at which time the hydrogen was exchanged for nitrogen. The reaction was filtered through a pad of celite to remove the palladium. The celite pad was washed with MeOH (30 ml). The combined fractions of MeOH were evaporated under reduced pressure and dried in vacuo to give 225 mg (99% yield) of pure produce (7) as a white solid.

HPLC (220 nm, 17 min. run) 1079 min.; LCMS: LC (214 nm) 2.21 min., MS (ES+) m/z 341.2 (C 20 H 24 N 2 O 2 +H requires 341.18).

Preparation of 3-(R)-Amino-2-(S)-[(4′-ethyl-biphenyl-4-carbonyl)-amino]-butyl-hydroxamic acid (8)

›Example 5 · 2 of 2

To a stirred suspension of biphenyl-amino-Thr methyl ester (7) (225 mg, 0.6 mmol) and hydroxylamine HCl salt (460 mg, 6.6 mmol) in MeOH (7 ml) and DCM (5 ml) was added fresh solid NaOMe powder (430 mg, 7.92 mmol) in one portion. After stirring for 2 min. at rt under nitrogen, the pH of the reaction on wet pH paper was approximately 7-8. The suspension had change from larger particles of white solid to a finely-divided milky consistency. The pH of the reaction was checked after adding small portions of NaOMe (50-100 mg) and allowing 2 min. for the reaction to equilibrate. The pH of the reaction reached a stable 11-12 after the final portion of NaOMe was added (250 mg total). The reaction was initiated at pH 11 and proceeded quickly. After 30 min., the reaction reached 85% completion as determined by LCMS, and the reaction was placed in a −10° C. bath. The cold mixture filtered over fine filter paper on a Büchner funnel. The white residue was washed with MeOH (15 ml). The organic fractions were collected and concentrated under reduced pressure to give crude product (750 mg). The crude product (only one 150 mg portion) was dissolved in DMSO (1 ml), AcCN (100 μl) and water (100 μl), passed through a Teflon syringe filter, and the clear filtrate was injected on a preparative HPLC. The purification used a 20×50 mm Ultro 120 C18 column running a 22 ml/min 2% gradient (AcCN/water, 0.1% TFA) for 16 min. The purified fractions were lyophilized to dryness. The product as the TFA salt was dissolved in AcCN/water (50:50) (5 ml), 1N aq. HCl (1 equivalent) and lyophilized again to give 11.5 mg of white powder as an HCl salt (23% yield).

HPLC (220 nm, 41 min. run) 19.31 min.; HPLC (220 nm, 17 min. run) 9.39 min; LCMS: LC (214 nm) 1.98 min., MS (ES+) m/z 342.2 (C 19 H 23 H 3 O 3 +H requires 342.17).

Synthesis of 4′Benzamide Biphenyl Threonine Hydroxamic Acid

›Example 6

Biphenyl-4,4′-dicarboxylic acid 4′-[(3-Boc-amino-propyl)-amide]4-[((2R)-hydroxy-(1S)-hydroxycarbamoyl-propyl)-amide] (6), and

›Example 7

Biphenyl-4,4′-dicarboxylic acid 4′-[(3-amino-propyl)-amide]4-[((2R)-hydroxy-(1S)-hydroxycarbamoyl-propyl)-amide] (7)

Synthesis of (2S,3R)-2-amino-3-(phenylmethoxy)-N-(phenylmethoxy)butanamide (1)

Procedure:

To a suspension of benzylhydroxylamine hydrochloride (8.310 g, 52.06 mmol), Boc-Thr(OBn)-OH (14.01 g, 45.28 mmol), EDCI (10.01 g, 52.21 mmol), and HOBt (6.90 g, 51.06 mmol) in CH 2 Cl 2 (300 mL) at 0° C. was added diisopropylethylamine (28.3 mL, 162 mmol) with stirring. The cooling bath was removed after one hour and the reaction mixture stirred at ambient temperature for 20 h and was then diluted with CH 2 Cl 2 (300 mL). The organic layer was washed with 1.0 M HCl (2×200 mL), sat NaHCO 3 (2×200 mL) and brine (200 mL), dried over MgSO 4 and concentrated to give 14.5 g of a white solid. The crude solid was treated with a solution of trifluoroacetic acid (90 mL) in CH 2 Cl 2 (90 mL) and stirred for 2.5 h. The reaction mixture was concentrated by rotary evaporation and men diluted with CH 2 Cl 2 (600 mL). The organic layer was washed with sat. NaHCO 3 (2×200 mL), dried over MgSO 4 and concentrated to give a dark orange oil. Purification by silica gel chromatography (50:1 CH 2 Cl 2 /MeOH) afforded (2S,3R)-2-amino-3-(phenylmethoxy)-N-(phenylmethoxy) butanamide (A) (8.9 g), as a pale yellow oil. Rf (50:1 CH 2 Cl 2 /MeOH on silica gel)=0.2.

Preparation of (1S,2R)-4′-(2-benzyloxy-1-benzyloxycarbamoyl-propylcarbamoyl)-biphenyl-4-carboxylic acid (3)

To a suspension of 4,4′-biphenyldicarboxylic acid 2 (1.360 g, 5.61 mmol) in DMF (180 mL) was added BOP (2.007 g, 4.54 mmol) and DIEA (1.7 mL, 9.8 mmol). A solution of (1S,2R)-2-amino-3,N-bis-benzyloxy-4-butyramide 1 (944 mg, 3.00 mmol) in DMF (20 mL) was added and the reaction stirred for 18 h. The solution was diluted with EtOAc (250 mL) and washed with 1.0 M HQ (500 mL). The aqueous layer was extracted with EtOAc (250 mL) and the organic layers combined. The organic layer was washed with 1.0 M HCl (250 mL), dried over MgSO 4 , and concentrated to give a erode yellow solid. Purification by silica gel chromatography (60:1 CH 2 Cl 2 /MeOH) gave 210 mg (1S,2R)-4′-(2-benzyloxy-1-benzyloxycarbamoyl-propylcarbamoyl)-biphenyl-4-carboxylic acid 3. (13% yield) as a yellow solid. R f =0.80 (10:1 CH 2 Cl 2 /MeOH); LRMS (ES+) m/z 539.1 (C 32 H 30 N 2 O 6 +H requires 539.22).

Preparation of biphenyl-4,4′-dicarboxylic acid 4′-[(3-(Boc)-amino-propyl)-amide]-4-[(2R)-benzyloxy-(1S)-benzyloxycarbamoyl-propyl)-amide] (5)

To a solution of biphenylcarboxylic acid 3 (200 mg, 0.371 mmol), EDCI (78 mg, 0.407 mmol), and HOBt (52 mg, 0.385 mmol) in DMF (2 mL) was added t-Butyl N-(3-aminopropyl)carbamate 4 (71 mg, 0.407 mmol) and DIEA (180 μL, 1.0 mmol). The reaction mixture was stirred 24 h, diluted with EtOAc (150 mL), washed with 1.0 M HCl (2×60 mL), saturated NaHCO 3 (2×60 mL), H 2 O (3×60 mL), dried over MgSO 4 and concentrated to give a crude white solid. Purification by silica gel chromatography (25:1 CH 2 Cl 2 /MeOH) afforded 194 mg (75% yield) of biphenyl-4,4′-dicarboxylic acid 4′-[(3-(Boc)-amino-propyl)-amide]-4-[(2R)-benzyloxy-(1S)-benzyloxycarbamoyl-propyl)-amide] 5 as a white solid. R f =0.15 (50:1 CH 2 Cl 2 /MeOH); LRMS (ES+) m/z 695.2 (C 40 H 46 N 4 O 7 +H requires 695.35).

Preparation of Biphenyl-4,4′-dicarboxylic acid 4′-[(3-Boc-amino-propyl)-amide]4-[((2R)-hydroxy-(1S)-hydroxycarbamoyl-propyl)-amide] (6)

A solution of dibenzyl-protected threonine hydroxamic acid 5 (190 mg, 0.273 mmol) in THF (5 mL) and MeOH (3 mL) was charged with Pd(OH) 2 (20%/C, 20 mg, 0.04 mmol) and stirred under a hydrogen atmosphere (balloon pressure) for 16 h. The crude mixture was filtered through a plug of celite eluting with 2:1 MeOH/THF (15 mL) and concentrated to give an orange syrup. Purification by silica gel chromatography (5:1:1 THF/MeOH/CH 2 Cl 2 afforded 110 mg (78% yield) of biphenyl-4,4′-dicarboxylic acid 4′-[(3-Boc-amino-propyl)-amide]4-[((2R)-hydroxy-(1S)-hydroxycarbamoyl-propyl)-amide] as a white foam, mp 75-77° C. R f =0.20 (10:1 CH 2 Cl 2 /MeOH); LRMS (ES+) m/z 515.4 (C 26 H 34 N 4 O 7 +H requires 515.26).

Preparation of Biphenyl-4,4′-dicarboxylic acid 4′-[(3-amino-propyl)-amide]4-[((2R)-hydroxy-(1S)-hydroxycarbamoyl-propyl)-amide] (7)

A flask containing Boc-protected amine 6 (80 mg, 0.155 mmol) was treated with 50% TFA/CH 2 Cl 2 (6.0 mL) and stirred for 2.5 h. The reaction mixture was concentrated by rotary evaporation to give a brown syrup. Purification by RP-HPLC (C 18 column, CH 3 CN gradient 5-70%, 0.1% TFA, UV analysis 300 nm, 36 min) and lyophilization of the collected fractions afforded 14 mg (21% yield) of biphenyl-4,4′-dicarboxylic acid 4′-[(3-amino-propyl)-amide]4-[((2R)-hydroxy-(1S)-hydroxycarbamoyl-propyl)-amide] as a white solid. LRMS (ES+) m/z 415.3 (C 21 H 26 N 4 O 5 +H requires 415.20); RP-HPLC (300 nm, 36 min run) 18.2 min.

›Example 8

Synthesis of N-(2-(N-hydroxycarbamoyl)(2S)-2-{[4-(4-ethylphenyl)phenyl]carbonylamino}ethyl)acetamide (4)

Preparation of 3-Acetylamino-2-(9H-fluoren-9-ylmethoxycarbonylamino)-propionic acid (2)

Acetic anhydride in THF (5 ml) was added to a cloudy mixture of Fmoc-DAP-H (1) (980 mg, 3.0 mmol) and pyridine (483 uL; 6.0 mmol) in THF (15 ml) with stirring at rt. After 4 hours, the clear pale yellow solution had reacted completely by LCMS. The reaction was evaporated under reduced pressure. The residue was dissolved in EtOAc (150 ml) and washed with 0.1M NaHSO 4 (50 ml), water (50 ml), sat. brine (50 ml), dried with Na 2 SO 4 , filtered and concentrated under reduced pressure to give 1.1 g of crude product as a white solid. The crude product was purified by prep. HPLC to give 0.99 g (90% yield) of acyl-DAP (2).

Preparation of (2-Acetylamino-1-hydroxycarbamoyl-ethyl)-carbamic acid 9H-fluoren-9-ylmethyl ester trityl resin (3)

A solution of Fmoc-DAP(Ac)-H (1) (980 mg, 0.56 mmol), HATU (0.146 g, 0.56 mmol) in NMP (1.7 ml) was made. After 2 min. of shaking, the activated acid was added to the deprotected H 2 N—O-Trt Resin (120 mg, 0.113 mmol) at rt with shaking. [Deprotection of the Fmoc group from the resin was accomplished using 20% piperizine in DMF (4 ml) for 2 hours twice. The resin was drained and washed with DMF (2×5 ml) and DCM (2×5 ml).] After shaking for 20 hours, the reaction was drained and washed with DMF (2×5 ml) and DCM (2×5 ml). The resin was dried and used as is in the next reaction.

Preparation of N-(2-(N-hydroxycarbamoyl)(2S)-2-{[4-(4-ethylphenyl)phenyl]carbonylamino}ethyl)acetamide (4)

Preparation of (2-Acetylamino-1-hydroxycarbamoyl-ethyl)-carbamic acid 9H-fluoren-9-ylmethyl ester trityl resin (3),

The resin was treated with 20% piperizine in DMF (4 ml) for 2 hours twice. The resin was drained and washed with DMF (2×5 ml) and DCM (2×5 ml). The resin was dried in vacuo. A solution of 4′-Ethyl-biphenyl-4-carboxylic acid (91 mg, 0.4 mmol), HATU (152 g, 0.4 mmol) in NMP (1.0 ml) was made. After 2 min. of shaking, the activated acid was added to the deprotected H-DAP(Ac)-Trt resin (120 mg, 0.113 mmol) at rt with shaking. After shaking for 18 hours, the reaction was drained and washed with DMF (2×5 ml) and DCM (2×5 ml). The resin was dried in. vacuo. The product was cleaved from the resin through treatment with a solution of TFA (500 uL), DCM (500 uL) and water (50 uL) for 25 min. The resin was filtered and washed with fresh DCM (2 ml). The combined TFA and DCM fractions are evaporated under reduced pressure. The residue was diluted with CH 3 CN/water (1:1) (10 ml) and lyophilized. The crude product was purified by prep. HPLC. The crude product was dissolved in DMSO (1 ml), passed through a Teflon syringe filter, and the clear filtrate was injected on a preparative HPLC. The purification used a 20×50 mm Ultro 120 C18 column running a 22 ml/min 2% gradient (AcCN/water, 0.1% TFA) for 16 min. The purified fractions were lyophilized to dryness. The solid residue was lyophilized again from CH 3 CN/water (1:1) (5 ml) give 8:6 mg of pure product (4) (˜21% yield).

›Example 9

Synthesis of 4′-Ethyl-biphenyl-4-carboxylic acid (1-hydroxycarbamoyl-2-methanesulfonylamino-ethyl)-amide (3)

Preparation of 4′-Ethyl-biphenyl-4-carboxylic acid (2-amino-1-hydroxycarbamoyl-ethyl)-amide trityl resin (2)

Pd(PPh 3 ) 4 (438 mg, 0.35 mmol) was added to a vial containing biphenyl-DAP(Alloc)-Trt Resin (1) (500 mg, 0.35 mmol), Dimethyl barbituric acid (600 mg, 3.5 mmol) and PPh 3 (438 mg, 0.35 mmol) in DCM (11 ml) at rt under argon. The mixture was sparged with argon and shaken for 16 hours. The bright yellow mixture was drained and washed with DMF (8×10 ml) and DCM (8×10 ml). The resin was dried in vacuo to give the deprotected DAP resin 2.

Preparation of 4′-Ethyl-biphenyl-4-carboxylic acid (1-hydroxycarbamoyl-2-methane sulfonylamino-ethyl)-amide (3)

Methanesulfonyl chloride (85 uL, 1.1 mmol) was added to a mixture of deprotected DAP resin (2) (160 mg, 0.11 mmol) and lutidine (190 uL, 1.6 mmol) in DCM (1.5 ml). After shaking for 16 hours, the mixture was drained and washed with DMF (10×2 ml) and DCM (5×2 ml). The product was cleaved from the resin through treatment with TFA/water (4:1) (1.5 ml). After shaking for 45 min., the TFA solution was collected from the resin by filtration, and the resin was washed with TFA (1 ml) and TFA/water (1:1) (10 ml). The combined TFA fractions were concentrated under reduced pressure to a reddish-brown solid. The product, identified by LCMS, was purified by prep. HPLC using a 20×50 mm Ultro 120 C18 column running a 22 ml/min 4% gradient (AcCN/water, 0.1% TFA) for 16 min. The purified fractions were lyophilized to dryness. The solid residue was lyophilized again from CH 3 CN/water (1:1) (5 ml) give 4 mg of pure product as a white solid (3) (˜9% yield).

›Example 10

Synthesis of 4′-Ethyl-biphenyl-4-carboxylic acid [2-(3,3-dimethyl-ureido)-1-hydroxycarbamoyl-ethyl]-amide (3) (Continued from compound 2 of Example 9 above)

Dimethylcarbamyl chloride (103 mg, 0.96 mmol) was added to a mixture of deprotected DAP resin (2) (125 mg, 0.096 mmol) and lutidine (225 uL, 1.92 mmol) in DCM (1.5 ml). After shaking at rt for 5 hours, the mixture was drained and washed with DCM (5×2 ml), DMF (5×2 ml) and DCM (5×2 ml). The product was cleaved from the resin through treatment with TFA/water (4:1) (1.5 ml). After shaking for 45 min., the TFA solution was collected from the resin by filtration, and the resin was washed with TFA/water (1:1) (2 ml). The combined TFA fractions were concentrated under reduced pressure to a reddish-brown solid. The product, identified by LCMS, was purified by prep. HPLC using a 20×50 mm Ultro 120 C18 column running a 22 ml/min 4% gradient (AcCN/water, 0.1% TFA) for 16 min. The purified fractions were lyophilized to dryness. The solid residue was lyophilized again from CH 3 CN/water (1:1) (5 ml) give 5 mg of pure product as a white solid (3) (˜13% yield).

›Example 11

Synthesis of 4′-Ethyl-biphenyl-4-carboxylic acid [2-(2-amino-ethylamino)-1-hydroxycarbamoyl-ethyl]-amide (2)

NaBH 3 CN (3.1 mg, 0.05 mmol) followed by acetic acid (6 uL, 1.0 mmol) were sequentially added to a stirred suspension of biphenyl-DAP-hydroxamate (1) (20 mg, 0.096 mmol) and Boc-amino-acetaldehyde (6.4 mg, 0.4 mmol) in MeOH (1.5 ml) in a 4 ml vial. The reaction was followed by LCMS. After stirring 12 hours, the cloudy reaction was only 50% complete. The reaction was concentrated under reduced pressure to a thick slurry that was dissolved in DMSO. The product was purified by prep. HPLC using a 20×50 mm Ultro 120 C18 column running a 22 ml/min 3% gradient (AcCN/water, 0.1% TFA) for 16 min. The purified fractions were lyophilized to dryness. The dried powder was dissolved in CH 3 CN/water (1:1) (1 ml) and 1M HQ (700 uL). After heating at 50° C. for 75 min., the reaction mixture was again lyophilized to dryness to produce 7.1 mg of product (2) as a 2×HCl salt white powder (˜17% yield).

›Example 12

Synthesis of N-(1-(N-hydroxycarbamoyl)(1S,2R)-2-hydroxypropyl)[4-(2-phenylethynyl)phenyl]carboxamide

Preparation of 4-Phenylethynyl-benzoic acid (3)

The 4-iodo-benzoic acid methyl ester 1 (20.0 g, 76.34 mmol), ethynyl-benzene 2 (8.56 g, 83.96 mmol), PdCl 2 (PPh 3 ) 2 (0.65 g, 0.92 mmol), and CuI (0.35 g, 1.83 mmol) were mixed with THF (110 ml) in a round bottom under argon. The dry THF was sparged with dry, oxygen-free argon for at least 5 min. immediately before use. The reaction was cooled to 10° C. and TEA (16 ml) was added. The cooling bath was removed and the reaction was stirred at RT under argon. After 2.5 h, the reaction was diluted with EtOAc (400 ml) and the solids were filtered off through a pad of celite. The organic filtrate was washed with 1M HCl (60 ml), sat aq. NaHCO 3 (60 ml), water (60 ml), brine (60 ml), dried with Na 2 SO 4 , filtered and concentrated under reduced pressure. The crude solid methyl ester was dissolved in MeOH (400 ml), 6M NaOH (30 ml) and water (50 ml). The reaction was stirred at 70° C. until a clear solution was formed (about 1 h). The reaction could be followed by LCMS. The reaction was cooled and diluted with water (500 ml) and hexane (100 ml). The pH was adjusted to pH 6-7. The white solid that formed was collected and washed with water (3×60 ml) and hexane (3×60 ml). The solid 3 was dried in vacuo yielding 17.3 g (approximately quantitative yield in 99% purity).

Preparation of 3-Hydroxy-2-(4-phenylethynyl-benzoylamino)-butyric acid methyl ester (4)

A solution of threonine (1.66 g, 9.8 mmol) and DIEA (1.53 ml, 8.8 mmol) in DMF (10 ml) was added to a stirred solution of 4-phenylethynyl-benzoic acid 3 (1.55 g, 7.0 mmol) and DIEA (1.53 ml, 8.8 mmol) in DMF (11 ml) at rt. After 12 h, the reaction was diluted with EtOAc (300 ml) and washed with 0.5M HCl (2×60 ml), sat aq. NaHCO 3 (60 ml), 50% diluted brine (60 ml), sat brine (60 ml), dried with Na 2 SO 4 , filtered and concentrated under reduced pressure. Upon drying in vacuo, 2.34 g of white solid was obtained (approximately quantitative yield in 99% purity).

Preparation of N-(2-Hydroxy-1-hydroxycarbamoyl-propyl)-4-phenylethynyl-benzamide (5)

A solution of tolanoic-Thr methyl ester (4) (2.34 g, 7.0 mmol) in MeOH (20 ml) and DCM (30 ml) was added to a cooled (−10° C. bath) suspension of hydroxylamine HCl salt (4.81 g, 70.0 mmol) and NaOMe (4.16 g, 77.0 mmol) in MeOH (30 ml). Follow reaction by LCMS. After stirring for 2 hours, the reaction seems to stall at 50% completion. Add an additional 1 equivalent of NaOMe (0.416 g). After 3 hours, the reaction was 75% complete. Add an additional 0.5 equivalent of NaOMe (0.21 g). After 4 hours, the reaction was 90% complete. Add an additional 0.15 equivalent of NaOMe (0.064 g) for a total of 12.65 equivalents of NaOMe. The pH of the reaction was between 11-12 and had reacted about 95% completion. The reaction was diluted with EtOAc (500 ml) and washed with sat aq. NaHCO 3 (2×60 ml), 50% diluted brine (60 ml), sat brine (60 ml), dried with Na 2 SO 4 , filtered and concentrated under reduced pressure. The residue was dissolved in minimal DMA. The product was purified by prep. HPLC using a reverse phase Ultro 120 C18 column running a 2% gradient (AcCN/water, 0.1% TFA). The purified fractions were lyophilized to dryness. The product as the TFA salt was dissolved in AcCN/water (50:50) (80 ml), 1N aq. HCl (13 equivalent) and lyophilized again to give 1.3 g of white powder in 55% yield and >97% purity.

›Example 13

Synthesis of 3-(R)-Amino-2-(S)-(3-phenylethynyl-benzoylamino)-butyl-hydroxamic acid (10)

Preparation of 3-(R)-Azido-2-(S)-(3-phenylethynyl-benzoylamino)-butyric acid methyl ester (9)

The synthesis of compound 4 is described above. The tolanyl compound (9) was made by the same procedures as for compound (6). The product (9) was obtained in 92% yield (952 mg).

HPLC (220 nm, 41 min. run) 32.64 min.; HPLC (220 nm, 17 min. run) 15.08 min LCMS: LC (214 nm) 3.16 min., MS (ES+) m/z 363.1 (C 20 H 18 N 4 O 3 +H requires 363.14).

Preparation of 3-(R)-Amino-2-(S)-(3-phenylethynyl-benzoylamino)-butyl-hydroxamic acid (10)

Triphenylphosphine (526 mg, 2.0 mmol) was added to a stirred solution of tolanyl-azido-Thr methyl ester (9) (726 mg, 2.0 mmol) at rt. After 3 days the reaction reached completion as judged by TLC (EtOAc/Hex (2:1)) and LCMS. The reaction was concentrated under reduced pressure to give an ivory colored solid. The crude amino-phosphine was dissolved in MeOH (20 ml) to give a pale yellow solution. To the solution of amino-phosphine was added sequentially hydroxylamine HCl salt (1.4 g, 20.0 mmol) followed by fresh solid NaOMe powder (1.3 g, 24.0 mmol) to make a milky pH 10 suspension. After 36 h, the reaction was complete by LCMS. The reaction was evaporated under reduced pressure to give a yellow solid that was dried in vacuo. The crude product (2.75 g) was triturated with ether (3×50 ml) to remove impurities (P(O)Ph 3 ) and then was dissolved in abs. EtOH (120 ml) with sonication for 15 min. A fine white powder was suction filtered off, and the clear yellow ethanolic portion was concentrated to a small volume. The crude product was dissolved in DMSO (8 ml) and purified by preparative HPLC (Ultra 120 C18 75×300 mm column) running a gradient (AcCN/water, 0.1% TFA) from 5 to 70% for 55 min. The purified fractions were pooled together and lyophilized to dryness. The product as the TFA salt was dissolved in AcCN/water (50:50) (100 ml), 1N aq. HCl (1 equivalent) and lyophilized again to give 325 mg of light yellow powder as the HCl salt (43% yield).

HPLC (220 nm, 41 min. run) 18.31 min.; HPLC (220 nm, 17 min. run) 9.11 min; LCMS; LC (214 nm) 1.91 min., MS (ES+) m/z 338.1 (C 19 H 15 N 3 O 3 +H requires 338.14).

Synthesis of 4′-(N-Acylamino)-Tolan Dap Analogs

›Example 14

Synthesis of 4-({4-[(aminoacetyl)amino]phenyl}ethynyl)-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]benzamide

Preparation of 2-N-Boc-amino-N-(4-iodo-phenyl)-acetamide (2)

A solution of Boc-Gly-OH (1.752 g, 10.0 mmol) in DCM (18 mL) and DMF (1 mL) was treated with EDCI (1.994 g, 10.4 mmol) and HOBt (1.351 g, 10.0 mmol). After stirring 15 min, 4-iodoaniline 1 (2.290 g, 10.4 mmol) was added and the reaction monitored by TLC (25:1 DCM/MeOH (R f =0.6)). After 24 h the solution was diluted with EtOAc (250 mL), washed with 1.0 M HCl (3×100 mL), sat NaHCO 3 (3×100 mL), brine (3×100 mL), dried over MgSO 4 , filtered and concentrated in vacuo to afford 2.900 g (77% yield) of a white solid.

Preparation of (2S)-3-N-Boc-amino-(4-ethynyl-benzoylamino)-propionic acid methyl ester (4)

Triethylamine (3.5 mL, 20.0 mmol) was added to a stirred solution of 4-ethynylbenzoic acid 3 (910 mg, 6.22 mmol). H-Dap(Boc)-OMe hydrochloride (1.903 g, 7.47 mmol), EDCI (1.432 g, 7.47 mmol), and HOBt (910 mg, 6.73 mmol) in DMF (50.0 mL). After stirring 20 h, the reaction mixture was diluted with EtOAc (400 mL), washed with 1.0 M HCl (2×100 mL), saturated NaHCO 3 (2×100 mL), H 2 O (4×100 mL), dried over MgSO 4 , filtered and concentrated in vacuo to give 2.140 g (99% yield) of a tan solid, mp=110-111° C. LRMS (ES+) m/z 346.9 (C 18 H 22 N 2 O 5 +H requires 347.10).

To a suspension of methyl (2S)-3-[(tert-butoxy)carbonylamino]-2-[(4-ethynylphenyl)carbonylamino]propanoate (4) (200 mg, 0.577 mmol) and 2-[(tert-butoxy)carbonylamino]-N-(4-iodophenyl)acetamide (2) (476 mg, 1.26 mmol) was added Et 3 N (350 μL, 2.5 mmol). The solution was purged with a stream of N 2 for several minutes and PdCl 2 (PPh 3 )2 (20 mg, 0.028 mmol) and CuI (10.6 mg, 0.055 mmol) were added. The reaction mixture was stirred at ambient temperature for 22 h and then concentrated by rotary evaporation. The crude black residue was chromatographed twice by silica gel chromatography (30:1 CH 2 Cl 2 /MeOH) to give 285 mg (83%) of methyl (2S)-3-[(tert-butoxy)carbonylamino]-2-({4-[2-(4-{2-[(tert-butoxy)carbonylamino]acetylamino}phenyl)ethynyl]phenyl}carbonylamino) propanoate (5) as a yellow foam.

To a solution of hydroxylamine hydrochloride (98 mg, 1.41 mmol) in MeOH (1.3 mL) at 0° C. was added 25 wt % NaOMe (460 mg, 2.13 mmol). The solution was stirred at 0° C. for 15 min and then charged with a solution of methyl (2S)-3-[(tert-butoxy)carbonylamino]-2-({4-[2-(4-{2-[(tert-butoxy)carbonylamino]acetylamino}phenyl)ethynyl]phenyl}carbonylamino)propanoate (4) (279 mg, 0.469 mmol) in THF (1.5 mL) and MeOH (0.6 mL). The reaction was stirred at 0° C. for 30 min and at room temperature for 2.5 h. The reaction mixture was diluted with 4:1 CHCl 3 /iPrOH (50 ml) and washed with 0.1 M HCl (30 mL). The layers were separated and the aqueous layer extracted once more with 4:1 CHCl 3 /iPrOH (30 ml). The organic layers were combined, dried over Na 2 SO 4 , filtered and concentrated. The crude residue was suspended in 10:1 CH 2 Cl 2 /MeOH (4 mL), filtered, and washed with 50:1 CH 2 Cl 2 /MeOH (2 mL) and Et 2 O (10 mL) to afford 180 mg (64%) of N-(4-{2-[4-(N-{1-(N-hydoxycarbamoyl)(1S)-2-[(tert-butoxy)carbonylamino]ethyl}carbamoyl) phenyl]ethynyl}phenyl)-2-[(tert-butoxy)carbonylamino]acetamide (6) as a white powder.

To an oven-dried flask containing N-(4-{2-[4-(N-{1-(N-hydroxycarbamoyl)(1S)-2-[(tert-butoxy)carbonylamino]ethyl}carbamoyl)phenyl]ethynyl}phenyl)-2-[(tert-butoxy)carbonylamino]acetamide (6) (130 mg, 0.218 mmol) was added 1:1 TFA/CH 2 Cl 2 (2.5 mL). The resulting pink solution was stirred for 2 h and concentrated to give a pink gum. The crude residue was rinsed with CH 2 Cl 2 (4 mL), concentrated by rotary evaporation and dissolved in THF (2 mL) and MeOH (0.4 mL). A solution of 4 M HCl in dioxane (200 mL) was added and the resulting precipitate filtered and washed with Et 2 O (10 mL) to afford 90 mg of 4-({4-[(aminoacetyl)amino]phenyl}ethynyl)-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]benzamide as a pale tan powder.

Reaction of Iodoaniline with Bromoacetyl Bromide

Bromoacetyl bromide (175 μL, 2.00 mmol) was added dropwise over 5 minutes to a solution of 4-iodoaniline (438 mg, 2.00 mmol) and Et 3 N (280 μl, 2.00 mmol) in benzene (5 mL). The reaction was stirred 1 hour, treated with morpholine (1.0 mL, 11.5 mmol) and stirred overnight. The reaction mixture was diluted with EtOAc (200 mL), washed with aqueous 0.1 M KOH (50 mL), H 2 O (50 mL), dried over MgSO 4 and concentrated to give a yellow oil. Purification by silica gel chromatography (100:1 CH 2 Cl 2 /MeOH) afforded 630 mg (91%) of N-(4-iodophenyl)-2-morpholin-4-ylacetamide as a waxy tan solid. This product was converted to analogues in a similar manner as Example 14.

›Example A

Preparation of 4-[4-(6-Chloro-pyridin-3-yl)-buta-1,3-diynyl]-benzoic acid methyl ester

DIEA (9.7 ml, 55.1 mmol) was added to a stirred solution of 4-iodo-benzoic acid (5.49 g, 22.2 mmol), HOAT (3.08 g, 22.6 mmol), EEC (4.33 g, 22.6 mmol) in DMF (85 ml). After 2 min., the H-DAP(Boc)-OMe (1) was added in one portion. After 12 hours, the reaction was found complete by LCMS. The reaction was diluted with EtOAc/hexane (1:1) (500 ml). The organic phase was washed with 1N HCl (2×80 ml), 1N NaOH (2×80 ml), water (2×80 ml), sat brine (80 ml), dried with Na 2 SO 4 , filtered and concentrated under reduced pressure to give crude product. The residue was filtered through a filter plug of silica eluting with EtOAc/hexane (1:1). The fractions with product were evaporated to give 9.3 g of product (3-tert-Butoxycarbonylamino-2-(4-iodo-benzoylamino)-propionic acid methyl ester) in 93% yield. This product was converted to analogues in a similar manner as the aforementioned Examples.

›Examples5
›Example 15

N-(1-(N-hydroxycarbamoyl)(1S,2R)-2-hydroxypropyl)(4-{2-[4-(morpholin-4-ylmethyl)phenyl]ethynyl}phenyl)carboxamide (5)

Preparation of (2S,3R)-2-[4-(4-formyl-phenylethynyl)-benzoylamino]-3-hydroxy-butyric acid methyl ester (3)

A solution of alkyne 1 (745 mg, 2.85 mmol), 4-iodobenzaldehyde 2 (902 mg, 3.89 mmol), and Et 3 N (900 μL, 6.5 mmol) in THF (50 mL) was purged with a stream of N 2 for two minutes and then treated with PdCl 2 (PPh 3 ) 2 (70 mg, 0.10 mmol) and CuI (34 mg, 0.18 mmol). The reaction mixture was stirred 40 h, concentrated by rotary evaporation and purified by silica gel chromatography (40:1 DCM/MeOH) to give 0.833 g (80% yield) of (2S,3R)-2-[4-(4-formyl-phenylethynyl)-benzoylamino]-3-hydroxy-butyric acid methyl ester 3 as a pale yellow powder, mp=143-144° C. R f =0.3 (25:1 DCM/MeOH); LRMS (ES+) m/z 366.1 (C 21 H 19 NO 5 +H requires 366.13); HPLC (300 nm, 47 min) 15.3 min.

Preparation of (2S,3R)-3-Hydroxy-2-[4-(4-morpholin-4-ylmethyl-phenylethynyl)-benzoylamino]-butyric acid methyl ester (4)

Sodium triacetoxyborohydride (0.670 g, 3.16 mmol) was added to a solution of benzaldehyde 3 (0.822 g, 215 mmol) and morpholine (260 μL, 2.97 mmol) in THF (15 mL) under N 2 atmosphere and the reaction monitored by TLC (25:1 DCM/MeOH, R f =0.2). After stirring 4 h, the reaction mixture was quenched with saturated NaHCO 3 (150 mL), extracted with EtOAc (3×100 mL), dried over MgSO 4 , filtered and concentrated to give a yellow syrup. Purification by silica gel chromatography (35:1 DCM/MeOH) afforded 0.844 g (86% yield) of 4 as a sticky white foam.

Preparation of (1S,3R)—N-(2-Hydroxy-1-hydroxycarbamoyl-propyl)-4-(4-morpholin-4-ylmethyl-phenylethynyl)-benzamide (5)

Sodium methoxide (25 wt % in MeOH, 1.860 g, 8.60 mmol) was added to a stirred solution of hydroxylamine hydrochloride (400 mg, 5.76 mmol) in anhydrous MeOH (5 mL) at 0° C. under N 2 atmosphere. After stirring 20 min, a solution of methyl ester 4 (829 mg, 1.90 mmol) in 1:1 MeOH/THF (6 mL) was added and the reaction mixture stirred at 0° C. for 1 h and at room temperature for 4 h. The reaction was quenched with 1.0 M HCl (6 mL), concentrated by rotary evaporation to remove organic solvents, and diluted with DMSO (4 mL). Analytical RP-HPLC (C 18 column, CH 3 CN gradient 5-35%, 0.1% TFA, UV analysis 300 nm, 16 min) indicated a purity of 85% for the crude product mixture. Purification by preparative RP-HPLC and lyophilization of the collected fractions gave 701 mg (81%) of 5 as a fluffy white solid. LRMS (ES+) m/z 438.1 (C 24 H 27 N 3 O 5 +H requires 438.20); RP-HPLC (300 nm, 16 min run) 8.7 min.

Resin Procedures for Synthesizing Tolanyl Hydroxamates

›Example 16

Synthesis of 4-[(4-{[(benzylamino)acetyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide

1. Coupling to Fmoc hydroxylamine resin

The resin was pre-swelled by adding DCM and shaking for 30 min. The resin was drained, 20% piperidine was added in DMF, the resin was shaken 1.25 hours, and finally drained and washed in 2×DMF and 2×DCM. After draining completely, 20% piperidine in DMF was added to attain cleavage in 1.25 hours. The resin was washed 4×DMF, 4×DCM and drained completely. In a separate flask, the amino acid (Fmoc-Thr tBu-OH, or Fmoc-DAP Boc-OH, 4 eq) was mixed, HATU (4 eq), DMF (60 ml) and Hunig's (8 eq) base were added and stirred for 2-3 min. The mixture was added to the resin and shaken 20-24 hours. Subsequently, the resin was drained and run with a standard wash (1×DCM, 4×DMF and 4×DCM). The Fmoc was removed from the amino acid by adding 20% piperidine in DMF and shaken 1.25 hours, drained, and given the standard wash (1×DCM, 4×DMF and 4×DCM).

2. Coupling of 4-iodobenzoic acid to Amino Acid resin

A mixture of 4-iodobenzoic acid (4 eq), HBTU (4 eq), DMF (60 ml) was shaken for several minutes. Hünig's base (8 eq) was subsequently added and the mixture was shaken further for 2-3 min. The pre-activated mixture was men added to the prepared Thr or DAP resin (Fmoc removed, 7.5 g, 5.775 mmol). The reaction is shaken 12-16 hours followed by the standard wash (1×DCM, 4×DMF and 4×DCM).

3. Alkyne coupling on Resin

To the 4-iodobenzoic resin (4 g, 3.08 mmol) was added 4-aminophenylacetylene (3 eq), Pd(PPh 3 ) 2 Cl 2 (0.04 eq), CuI (0.08 eq) and THF (purged with Argon). After mixing for 1 min., TEA (4.5 eq) was added and the reaction was shaken 12 hours at RT tinder argon.

4. Aniline coupling with bromoacetyl chloride on Resin

To aniline resin (4 g, 3.08 mmol) was added DCM (30 ml) lutidine (10 eq) and shaken for 1 min. Bromoacetyl chloride (8 eq) in DCM (5 ml) was added slowly. After the addition, the shiny was shaken for 1.5 to 1.75 hours. Subsequent draining and a wash with 2×DCM, 4×DMF and 4×DCM was then performed.

5. Displacement with amines on Resin

To the bromoacetyl resin (125 mg), was added NMP (1.5 ml) followed by amine (0.2 g or ml, ie excess) and the slurry was shaken for 12-16 hours at RT. To neutralize the salt, TEA was added. The imidazole was heated at 38° C. for 24 h (in the case of anilines, they were heated at 38° C. for 48 h). The reaction mixture was drained and washed 4×DMF and 4×DCM.

6. Cleavage from resin and deprotection of Thr tBu and DAP Boc

The resin (125 mg) was soaked in TFA/water (80:20 v/v) (1.5 ml) at RT for 45 min. Upon cleavage the solution was collected and the resin was washed with more TFA/water mixture (0.75 ml). To the TFA/product solution was added acetonitrile/water solution (1:1 v/v, 10 ml) and pure water (2.5 ml). The mixture was frozen in liquid nitrogen for ˜15 min and lyophilized. The dry residue was dissolved in the acetonitrile/water solution (1:1 v/v, 10 ml) again followed by addition of 1M aq. HCl (12 eq per basic nitrogen), frozen, and lyophilized to a powder.

Synthesis of 3′-Nitro-Tolan Threonine Hydroxamic Acid

›Example 17

(1S,2R)—N-(2-hydroxy-1-hydroxycarbamoyl-propyl)-4-(3-nitro-phenylethynyl)-benzamide

Preparation of (1S,2R)—N-(2-tert-butoxy-1-hydroxycarbamoyl-propyl)-4-ethynyl-benzamide on hydroxylamine 2-chlorotrityl resin (3)

The resin 1 (0522 g, 0.365 mmol, 0.70 mmol/g) was swelled in DCM (5 mL) for 2 h and drained. The resin was treated with 20% piperidine in DMF (6 mL) for 1 hour, washed with DMF (4×6 mL) and DCM (4×6 mL) and drained completely. In a separate flask, 4-ethynylbenzoic acid 2 (0.160 g, 1.10 mmol), DIC (0.280 mL, 1.79 mmol), HOBt (0.148 g, 1.10 mmol) and DIEA (0.4 mL, 2.30 mmol) were dissolved in DCM (1 mL) and DMF (4 mL), stirred 15 min and added to the resin. After shaking for 36 h, the mixture was drained, washed with DMF (4×6 mL) and DCM (4×6 mL) and dried in vacuo to give 0.495 g of a yellow resin.

Preparation of (1S,2R)—N-(2-hydroxy-1-hydroxycarbamoyl-propyl)-4-(3-nitro-phenylethynyl)-benzamide (5)

Resin 3 (100 mg, 0.070 mmol) was swelled in DCM (2 mL) for 1 h and drained. A solution of 1-iodo-3-nitrobenzene 4 (87.1 mg, 0.350 mmol) and Et 3 N (150 μL, 1.10 mmol) in DMF (1.5 mL) was purged with a stream of N 2 bubbles for two minutes and added to the resin. After mixing for 5 min, PdCl 2 (PPh 3 ) 2 (10.0 mg, 0.014 mmol) and CuI (7.0 mg, 0.036 mmol) were added and the mixture shaken for 26 h. The resin was drained, washed with DMF (3×2 mL), DCM (3×2 mL) and cleaved with 10% TFA/DCM (1.5 mL) for 20 min. The solution was collected and the resin was rinsed with additional 10% TFA/DCM (1.0 mL). The cleavage fractions were combined, treated with neat TFA (2.0 mL), stirred for 1 h at rt and concentrated by rotary evaporation to give a crude brown residue. Purification by RP-HPLC (C 18 column, CH 3 CN gradient 5-65%, 0.1% TFA, UV analysis 300 nm, 28 min) and lyophilization of the collected fractions afforded 6.0 mg (22% yield) of (1S,2R)—N-(2-hydroxy-1-hydroxycarbamoyl-propyl)-4-(3-nitro-phenylethynyl)-benzamide as a white foam. LRMS (ES+) m/z 384.2 (C 19 H 17 N 3 O 6 +H requires 384.15); RP-HPLC (300 nm, 28 min run) 15.2 min.

Synthesis of 4′-Trifluoromethoxy-Tolan Dap Hydroxamic Acid

›Example 18

(1S)—N-(2-amino-1-hydroxycarbamoyl-ethyl)-(4-trifluoromethoxy-phenylethynyl)-benzamide (5)

Preparation of (1S)—N-(2-(Boc)-amino-1-hydroxycarbamoyl-ethyl)-4-ethynyl-benz-amide on hydroxylamine 2-chlorotrityl resin (3)

The resin 1 (1.330 g, 0.931 mmol, 0.70 mmol/g) was swelled in DCM (15 mL) for 2 h and drained. The resin was treated with 20% piperidine in DMF (20 mL) for 1 hour, washed with DMF (3×15 mL) and DCM (3×15 mL) and drained completely. In a separate flask, 4-ethynylbenzoic acid 2 (0.408 g, 2.793 mmol), DIC (0.70 mL, 4.470 mmol), HOBt (0.377 g, 2.793 mmol) and DIEA (1.0 mL, 5.7 mmol) were dissolved in DCM (10 mL) and DMF (2 mL), stirred 15 min and added to the resin. After shaking for 36 h, the mixture was drained, washed with DMF (3×15 mL) and DCM (3×15 mL) and dried in vacuo to give 1.290 g of a yellow resin.

Preparation of (1S)—N-(2-amino-1-hydroxycarbamoyl-ethyl)-4-(4-trifluoromethoxy-phenylethynyl)-benzamide (5)

Resin 3 (120 mg, 0.084 mmol) was swelled in DCM (2 mL) for 1 h and drained. A solution of 4-(trifluoromethoxy)iodobenzene 4 (96.8 mg, 0.336 mmol) and Et 3 N (150 μL, 1.10 mmol) in DMF (2.0 mL) was purged with a stream of N 2 bubbles for two minutes and added to the resin. After mixing for 5 min, PdCl 2 PPh 3 ) 2 (18.0 mg, 0.025 mmol) and CuI (8.0 mg, 0.042 mmol) were added and the mixture shaken for 24 h. The resin was drained, washed with DMF (3×2 mL), DCM (3×2 mL) and cleaved with 10% TFA/DCM (2.0 mL) for 20 min. The solution was collected and the resin was rinsed with additional 10% TFA/DCM (1.0 mL). The cleavage fractions were combined, treated with neat TFA 13.0 mL), stirred for 1 h at rt and concentrated by rotary evaporation to give a crude brown residue. Purification by RP-HPLC (C 18 column, CH 3 CN gradient 5-55%, 0.1% TFA, UV analysis 300 nm, 28 min) and lyophilization of the collected fractions afforded 9.0 mg (25% yield) of (1S)—N-(2-amino-1-hydroxycarbamoyl-ethyl)-4-(4-trifluoromethoxy-phenylethynyl)-benzamide as a white solid. LRMS (ES+) m/z 408.0 (C 19 H 16 F 3 N 3 O 4 +H requires 408.11); RP-HPLC (300 nm, 28 min run) 18.0 min.

›Example 19

Synthesis of N-(1-(N-hydroxycarbamoyl)(1S,2R)-2-hydroxypropyl)[4-(4-phenylbuta-1,3-dlynyl)phenyl]carboxamide

Reagent MW EQ g/ml mmol Dibromovinylbenzoic acid (2) 320 1.0 5.76 g 18.0 Ethynyl-benzene 102 1.4 2.57 g 25.2 Pd 2 dba 3 915 0.01 164 mg  0.18 (1% cat.) TMPP 352 0.04 253 mg  0.72 (4%) TEA 101 3.0 7.5 ml 54.0 DMF 60 ml degassed with argon

The 4-(2,2-Dibromo-vinyl)-benzoic acid methyl ester (2) was made by the method of Wang Shen and Le Wang in J. Org. Chem. 1999, 64, 8873-8879.

A solution of 4-(2,2-dibromo-vinyl)-benzoic acid methyl ester (2) (5.76 g, 18.0 mmol), ethynyl-benzene (2.57 g, 25.2 mmol), Pd 2 dba 3 (164 mg, 0.18 mmol), tris(4-methoxyphenyl) phosphine (TMPP) (253 mg, 0.72 mmol) were dissolved in argon sparged (5 min.) DMF (60 ml). The reaction was sparged with argon for 1 min. TEA (7.5 ml, 54.0 mmol) was added to the stirred reaction mixture that was then heated under argon at 85° C. for 3.5 hours. The reaction was found complete by LCMS. The reaction was cooled to rt and diluted with EtOAc/hexane (1:1) (300 ml). The organic phase was washed with 1M HCl (2×50 ml), 1M NaOH (3×50 ml), water (2×50 ml), sat: brine (50 ml), dried with Na 2 SO 4 , filtered and concentrated under reduced pressure to obtain 5.25 g of crude product as an oil. The oil was treated with approximately 20 ml of a solution of 20% EtOAc/hexane that was heated to dissolve the residue. The walls of the flask were washed with the 20% EtOAc/hexane solution (5 ml) that upon cooling gave 1.45 g of pure product (31% yield) as a white solid. The balance of the crude reaction product was purified by flash chromatography using EtOAc (8%)/hexane as eluant. The pure fractions were evaporated and dried in vacuo to give addition product typically 25-30% addition yield.

4-(4-Phenyl-buta-1,3-diynyl)-benzoic acid methyl ester (4) was made according to the method of Wang Shen and Sheela A. Thomas in Org. Lett. 2000, 2 (18), 2857-2860.

Preparation of 4-(4-Phenyl-buta-1,3-diynyl)-benzoic add (5)

A 3M aq. solution of NaOH (20 ml) was added to a stirred solution of methyl ester 4 (1.45 g, 5.6 mmol) in MeOH (100 ml) at rt. The reaction solution was heated to reflux for 45 min. until the reaction turned clear. All of the starting material was gone by TLC and HPLC. The reaction was cooled to rt and some MeOH (˜50 ml) was removed by evaporation under reduced pressure. Water (100 ml) was added to the mixture. Cone. HCl was added dropwise to the stirred solution until acidic by pH paper (pH2). The white precipitate that formed was collected by suction filtration. The solid was washed with water (3×20 ml) and hexane (2×20 ml) to give after drying 1.35 g of product acid 5 in 99% yield.

Subsequent conversion of compound 5 to compound 7 was performed according to the method described in Example 12 for the synthesis of N-(2-Hydroxy-1-hydroxycarbamoyl-propyl)-4-phenylethynyl-benzamide (compound 5). LCMS MH+ 363.13.

›Example B

Synthesis of N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-aminophenyl)buta-1,3-diynyl]benzamide

Preparation of 2-{-4-[4-(4-Amino-phenyl)-buta-1,3-diynyl]-benzoylamino}-3-tert-butoxycarbonylamino-propionic acid methyl ester (2)

DIEA (10.5 ml, 60.3 mmol) was added to a stirred solution of 4-[4-(4-Amino-phenyl)-buta-1,3-diynyl]-benzoic acid (1) (5.0 g, 19.1 mmol), HOBT (2.72 g, 20.1 mmol), EDC (3.85 g, 20.1 mmol) in DMF (80 ml). After 2 min., the H-DAP(Boc)-OMe was added in one portion. After 12 hours at rt, the reaction was found complete by LCMS. The reaction was diluted with EtOAc/hexane (4:1) (500 ml). The organic phase was washed with 1N NaOH (2×80 ml), water (2×80 ml), sat brine (80 ml), dried with Na 2 SO 4 , filtered and concentrated under reduced pressure to give crude product. The residue was filtered through a filter plug of silica eluting with EtOAc/hexane (4:1). The fractions with product were evaporated to give 8.02 g of product in 91% yield.

Subsequent conversion of compound 2 to the final hydroxamic acid (for example, Example 892) was performed according to the method described in Example 12 for the synthesis of #-(2-Hydroxy-1-hydroxycarbamoyl-propyl)-4-phenylethynyl-benzamide (compound 5).

Synthesis of 4-(Buta-1,3-diynyl)-benzoic Acid (4) for making 1,3-diynyl analogues (such as Example 20 below)

Preparation of 4-(4-trimethylsilanyl-buta-1,3-diynyl)-benzoic acid methyl ester (3)

A solution of methyl 4-iodobenzoate 2 (4.510 g, 17.2 mmol), PdCl 2 (PPh 3 ) 2 (483 mg, 0.690 mmol), and CuI (262 mg, 1.37 mmol) in CH 3 CN (50 mL) was cooled to 0° C. under N 2 atmosphere in the absence of light. Triethylamine (7.2 mL, 52.0 mmol) was added, followed by trimethylsilyl-1,3-butadiyne 1 (5.240 g, 42.8 mmol) and the reaction stirred 3 h at 0° C. and 30 h at ambient temperature. Removal of solvent by rotary evaporation afforded a crude black residue that was purified by silica gel chromatography (95:5 hexanes/EtOAc) to give 3.450 g (79% yield) of 4-(4-trimethylsilanyl-buta-1,3-diynyl)-benzoic acid methyl ester 3 as a brown solid, mp=67-68° C.

Preparation of 4-(buta-1,3-diynyl)-benzoic acid (4)

Potassium hydroxide (3.700 g, 65.9 mmol) was dissolved in H 2 O (10 mL) and added to a solution of 4∝-trimethylsilanyl-buta-1,3-diynyl)-benzoic acid methyl ester 3 (3.420 g, 13.5 mmol) in THF (26 mL) in the absence of light. After stirring 16 h, the reaction was quenched with 1.0 M HCl (120 mL) and the resulting precipitate was filtered, washed with 1:1 hexanes/benzene (150 mL) and dried in vacuo to afford 2.100 g (91% yield, 98% pure) of 4-(buta-1,3-diynyl)-benzoic acid 4 as a brown solid, mp>230° C. Although diyne 4 was found to be unstable at room temperature it could be stored for several weeks at 0° C. with only small amounts of decomposition observed by TLC. R f =0.2 (4:1 Hexanes/EtOAc); HPLC (300 nm, 28 min run) 16.0 min; LRMS (ES+) m/z 171.0 (C 11 H 6 O 2 +H requires 171.04).

Synthesis of a 3′-Nitrophenyl-Diacetylenic-Dap Hydroxamic Acid

›Examples11
›Example 20

N-(1-(N-hydroxycarbamoyl)(1S)-2-aminoethyl){4-[4-(3-nitrophenyl)buta-1,3-diynyl]phenyl}carboxamide (6)

Preparation of Fmoc-Dap(Boc)-NHOH on hydroxylamine 2-chlorotrityl resin (2)

A suspension of N-Fmoc-hydroxylamine 2-chlorotrityl resin (3.288 g, 2.53 mmol, 0.77 mmol/g, Novabiochem) in DCM (40 mL) was shaken for 2 h and drained. The resin was treated with 20% piperidine in DMF (40 mL) for 1 hour, washed with DMF (2×40 mL), treated a second time with 20% piperidine in DMF (40 mL), washed with DMF (3×40 mL) and DCM (3×40 mL) and drained completely. In a separate flask, Fmoc-Dap(Boc)-OH (3.175 g, 7.44 mmol), HATU (2.829 g, 7.44 mmol) and DIEA (4.3 mL, 24.7 mmol) were dissolved in DMF (35 mL), stirred three minutes and added to the resin. After shaking for 48 h, the mixture was drained, washed with DMF (4×40 mL) and DCM (4×40 mL) and dried in vacuo to give 3.530 g of a yellow resin.

Preparation of (S)—N-(2-N-Fmoc-amino-1-hydroxycarbamoyl-ethyl)-4-buta-1,3-diynyl-benzamide on hydroxylamine 2-chlorotrityl resin (4)

The resin 2 (3.530 g, 2.53 mmol, 0.71 mmol/g) was swelled in DCM (40 mL) for 2 h and drained. The resin was treated with 20% piperidine in DMF (40 mL) for 1 hour, washed with DMF (4×40 mL) and DCM (4×40 mL) and drained completely. In a separate flask, 4-buta-1,3-diynyl-benzoic acid 3 (1.076 g, 6.32 mmol), EDCI (1.457 g, 7.60 mmol), HOBt (1.048 g, 7.75 mmol) and DIEA (2.2 mL, 12.6 mmol) were dissolved in DCM (25 mL) and DMF (5 mL), stirred 45 min and added to the resin. After shaking for 48 h, the mixture was drained, washed with DMF (4×40 mL) and DCM (4×40 mL) and dried in vacuo to give 3.35 g of a pale brown resin.

Preparation of (S)—N-(2-amino-1-hydroxycarbamoyl-ethyl)-4-[4-(3-nitro-phenyl)-buta-1,3-diynyl]-benzamide (6)

Resin 4 (176 mg, 0.135 mmol) was swelled in DCM (3 mL) for 1 h and drained. A solution of 1-iodo-3-nitrobenzene 5 (118 mg, 0.474 mmol) and Et 3 N (200 μL, 1.43 mmol) in DMF (3.0 mL) was purged with a stream of N 2 bubbles for two minutes and added to the resin. After mixing for 5 min, PdCl 2 (PPh 3 ) 2 (6.0 mg, 0.009 mmol) and CuI (10.0 mg, 0.052 mmol) were added and the mixture shaken for 36 h. The resin was drained, washed with DMF (4×3 mL), DCM (4×3 mL) and cleaved with 10% TFA/DCM (2 mL) for 20 min. The solution was collected and the resin was rinsed with additional 10% TFA/DCM (2 mL). The cleavage fractions were combined, treated with neat TFA (4.0 mL), stirred for 1 h at rt and concentrated by rotary evaporation to give a crude brown residue. Purification by RP-HPLC (C 18 column, CH 3 CN gradient 5-65%, 0.1% TFA, UV analysis 300 nm, 30 min) and lyophilization of the collected fractions afforded 12.0 mg (22%) of 470 as a white solid. LRMS (ES+) m/z 392.9 (C 20 H 16 N 4 O 5 +H requires 393.11); RP-HPLC (300 nm, 30 min run) 14.9 min.

Synthesis of 4′-Benzamide Diacetylene Dap Hydroxamic Acid

›Example 21

N-((2S)-amino-1-hydroxycarbamoyl-ethyl)-4-{4-[4-(2-amino-ethylcarbamoyl)-phenyl]-buta-1,3-diynyl}-benzamide (3)

Preparation of N-((2S)-amino-1-hydroxycarbamoyl-ethyl)-4-{4-[4-(2-amino-ethylcarbamoyl)-phenyl]-buta-1,3-diynyl}-benzamide (3)

Resin 1 (145 mg, 0.111 mmol) was swelled in DCM (2 mL) for 1 h and drained. A solution of 4-ethynylbenzamide 2 (124 mg, 0.288 mmol) and Et 3 N (100 μL, 0.72 mmol) in DMF (2.0 mL) was added and the resin agitated for 5 min. A mixture of PdCl 2 (PPh 3 ) 2 (21 mg, 0.030 mmol) and CuI (22 mg, 0.110 mmol) was added and the resin was agitated for 60 h. The resin was drained, washed with DMF (3×2 mL), DCM (3×2 mL) and cleaved with 10% TFA/DCM (1.5 mL) for 20 min. The solution was collected and the resin was rinsed with additional 10% TFA/DCM (1.0 mL). The cleavage fractions were combined, treated with neat TFA (2.0 mL), stirred for 1 h at rt and concentrated by rotary evaporation to give a crude brown residue. Purification by RP-HPLC (C 18 column, CH 3 CN gradient 5-55%, 0.1% TFA, UV analysis 300 nm, 26 min) and lyophilization of the collected fractions afforded 2.6 mg (5% yield) of N-((2S)-amino-1-hydroxycarbamoyl-ethyl)-4-{4-[4-(2-amino-ethylcarbamoyl)phenyl]-buta-1,3-diynyl}-benzamide. LRMS (ES+) m/z 434.0 (C 23 H 23 N 5 O 4 +H requires 434.19); RP-HPLC (300 nm, 26 min run) 15.3 min.

Synthesis of N-[4-Butadiynyl-benzoyl]-Thr(tBu) on Resin (Continued to make Examples 22 and 23)

Preparation of (2S,3R)-2-N-Fmoc-amino-3-tert-butoxy-N-hydroxy-butyramide on hydroxylamine 2-chlorotrityl resin (2)

A suspension of N-Fmoc-hydroxylamine 2-chlorotrityl resin (3.188 g, 2.45 mmol, 0.77 mmol/g, Novabiochem) in DCM (40 mL) was shaken for 2 h and drained. The resin was treated with 20% piperidine in DMF (40 mL) for 1 hour, washed with DMF (2×40 mL), treated a second time with 20% piperidine in DMF (40 mL), washed with DMF (3×40 mL) and DCM (3×40 mL) and drained completely. In a separate flask, Fmoc-Thr(tBu)-OH (2.927 g, 7.36 mmol), HATU (2.798 g, 7.36 mmol) and DIEA (4.3 mL, 24.6 mmol) were dissolved in DMF (40 mL), stirred three minutes and added to the resin. After shaking for 24 h, the mixture was drained, washed with DMF (4×40 mL) and DCM (4×40 mL) and dried in vacuo to give 3.500 g of a yellow resin.

Preparation of 4-buta-1,3-diynyl-N-(2-tert-butoxy-1-hydroxycarbamoyl-propyl)-benzamide on hydroxylamine 2-chlorotrityl resin (4)

The resin 2 (2.030 g, 1.56 mmol, 0.77 mmol/g) was swelled in DCM (20 mL) for 2 h and drained. The resin was treated with 20% piperidine in DMF (20 mL) for 1 hour, washed with DMF (4×20 mL) and DCM (4×20 mL) and drained completely. In a separate flask, 4-buta-1,3-diynyl-benzoic acid 3 (0.617 g, 3.63 mmol), EDCI (0.834 g, 4.35 mmol), HOBt (0.588 g, 4.35 mmol) and DIEA (1.0 mL, 5.7 mmol) were dissolved in DCM (15 mL) and DMF (4 mL), stirred 45 min and added to the resin. After shaking for 36 h, the mixture was drained, washed with DMF (4×20 mL) and DCM (4×20 mL) and dried in vacuo to give 1.900 g of a pale brown resin.

Synthesis of Diacetylenic Threonine Hydroxamic Acids

›Example 22

(2S,3R)-4-[4-(3-aminomethyl-phenyl)-buta-1,3-diynyl]-N-(2-hydroxy-1-hydroxycarbamoyl-propyl)-benzamide (3)

Resin 1 (obtained from previous synthesis) (100 mg, 0.077 mmol) was swelled in DCM (2 mL) for 1 h and drained. A solution of 3-iodobenzylamine hydrochloride 2 (83.0 mg, 0.308 mmol) and Et 3 N (250 μL, 1.80 mmol) in DMF (1.5 mL) was purged with a stream of N 2 bubbles for two minutes and added to the resin. After mixing for 5 min, PdCl 2 (PPh 3 ) 2 (11.0 mg, 0.016 mmol) and CuI (7.0 mg, 0.037 mmol) were added and the mixture shaken for 36 h. The resin was drained, washed with DMF (4×2 mL), DCM (4×2 mL) and cleaved with 10% TFA/DCM (1.5 mL) for 20 min. The solution was collected and the resin was rinsed with additional 10% TFA/DCM (1.5 mL). The cleavage fractions were combined, treated with neat TFA (3.0 mL), stirred for 1 h at rt and concentrated by rotary evaporation to give a crude brown residue. Purification by RP-HPLC (C 18 column, CH 3 CN gradient 5-65%, 0.1% TFA, UV analysis 300 nm, 28 min) and lyophilization of the collected fractions afforded 4.3 mg (14%) of (2S,3R)-4-[4-(3-aminomethyl-phenyl)-buta-1,3-diynyl]-N-(2-hydroxy-1-hydroxycarbamoyl-propyl)-benzamide as a white solid. LRMS (ES+) m/z 392.0 (C 22 H 21 N 3 O 4 +H requires 392.15); RP-HPLC (300 nm, 28 min run) 10.0 min.

Synthesis of Diacetylenic Benzylamine Analogues

›Example 23

(1S,2R)—N-2-hydroxy-1-hydroxycarbamoyl-propyl)-4-[4-(4-morpholin-4-ylmethyl-phenyl)-buta-1,3-diynyl]-benzamide (4)

Preparation of threonine diacetylenic benzaldehyde on resin (3)

Resin 1 (1.00 g, 0.77 mmol) was pre-swelled in DCM (25 mL) for 14 h and drained. A solution of 4-iodobenzaldehyde 2 (715 mg, 3.08 mmol) and Et 3 N (1.00 mL, 7.17 mmol) in DMF (20 mL) was purged with N 2 for two minutes and added to the resin. After mixing for 5 min, PdCl 2 (PPh 3 ) 2 (40.0 mg, 0.057 mmol) and CuI (19.0 mg, 0.100 mmol) were added and the reaction shaken for 48 h. The resin was drained, washed with DMF (4×20 mL), DCM (4×20 mL) and dried in vacuo to give 1.100 g of a dark yellow resin.

Preparation of (1S,2R)—N-2-hydroxy-1-hydroxycarbamoyl-propyl)-4-[4-(4-morpholin-4-ylmethyl-phenyl)-buta-1,3-diynyl]-benzamide (4)

A solution of morpholine (75 μL, 0.860 mmol) and trimethyl orthoformate (100 μL, 0.914 mmol) in THF (3.0 mL) was added to a Teflon-lined screw-capped vial containing the resin-bound diacetylenic benzaldehyde 3. The resin was agitated for 10 min, treated successively with acetic acid (100 μL, 1.75 mmol) and a solution of NaCNBH 3 (40.0 mg, 0.637 mmol) in MeOH (1.0 mL) and shaken for 44 h. The resin was filtered, washed with DMF (3×3 mL) and DCM (3×3 mL) and drained. Cleavage from the resin was achieved by treatment with 10% TFA/DCM (2.0 mL) and shaking 20 min. The solution was collected and the resin was rinsed with additional 10% TFA/DCM (2.0 ml). The cleavage fractions were combined, treated with neat TFA (3.0 mL), stirred for 1 h at rt and concentrated by rotary evaporation to give a crude yellow residue. Purification by RP-HPLC (C 18 column, CH 3 CN gradient 5-35%, 0.1% TFA, UV analysis 300 nm, 18 min) and lyophilization of the collected fractions afforded 19.0 mg (29%) of 472 as a fluffy yellow solid. LRMS (ES+) m/z 462.0 (C 26 H 27 N 3 O 5 +H requires 462.10); HPLC (300 nm, 18 min run) 10.3 min.

Synthesis of 4′-Benzamide Diacetylene Threonine Hydroxamic Acid

›Example 24

(1S,2R)—N-(2-hydroxy-1-hydroxycarbamoyl-propyl)-4-{4-[4-(2-amino-ethylcarbamoyl)-phenyl]-buta-1,3-diynyl}-benzamide (5)

Preparation of N-(2-trityl-amino-ethyl)-4-ethynyl-benzamide (3)

To a solution of 4-ethynylbenzoic acid 1 (292 mg, 2.00 mmol), EDCI (382 mg, 2.00 mmol), and HOBt (270 mg, 2.00 mmol) in DMF (10 ml) was added N-trityl ethylenediamine 2 (810 mg, 2.67 mmol) and DIEA (1.4 mL, 8.0 mmol). The reaction mixture was stirred 24 h, diluted with EtOAc (200 mL), washed with 0.5 M HCl (60 mL), saturated NaHCO 3 (2×60 mL), H 2 O (4×60 mL), dried over MgSO 4 and concentrated to give 836 mg (97% yield) of N-(2-trityl-amino-ethyl)-4-ethynyl-benzamide 3 as a white solid, mp 50-51° C. R f =0.40 (1:1 Hexanes/EtOAc).

Preparation of (1S,2R)—N-(2-hydroxy-1-hydroxycarbamoyl-propyl)-4-{4-[4-(2-amino-ethylcarbamoyl)-phenyl]-buta-1,3-diynyl}-benzamide (5)

Resin 4 (150 mg, 0.116 mmol) was swelled in DCM (2 mL) for 1 h and drained. A solution of 4-ethynylbenzamide 3 (151 mg, 0.350 mmol) and Et 3 N (150 μL, 1.10 mmol) in DMF (2.0 mL) was added and the resin agitated for 5 min. A mixture of PdCl 2 (PPh 3 ) 2 (21 mg, 0.030 mmol) and CuI (28 mg, 0.147 mmol) was added and the resin was agitated for 60 h. The resin was drained, washed with DMF (3×2 mL), DCM (3×2 mL) and cleaved with 10% TFA/DCM (1.5 mL) for 20 min. The solution was collected and the resin was rinsed with additional 10% TFA/DCM (1.0 mL). The cleavage fractions were combined, treated with neat TFA (2.0 mL), stirred for 1 h at rt and concentrated by rotary evaporation to give a crude brown residue. Purification by RP-HPLC (C 18 column, CH 3 CN gradient 5-65%, 0.1% TFA, UV analysis 300 nm, 26 min) and lyophilization of the collected fractions afforded 2.0 mg (4% yield) of (1S,2R)—N-(2-hydroxy-1-hydroxycarbamoyl-propyl)-4-{4-[4-(2-amino-ethylcarbamoyl)-phenyl]-buta-1,3-diynyl}-benzamide. LRMS (ES+) m/z 449.1 (C 24 H 24 N 4 O 5 +H requires 449.18); RP-HPLC (300 nm, 26 min run) 17.0 min.

Synthesis of 3′-Pyridine Diacetylene Threonine Hydroxamic Acid

›Example 25

N-((2R)-hydroxy-(1S)-hydroxycarbamoyl-propyl)-4-(4-pyridin-3-yl-buta-1,3-diynyl)-benzamide (3)

Preparation of N-((2R)-hydroxy-(1S)-hydroxy carbamoyl-propyl)-4-(4-pyridin-3-yl-buta-1,3-diynyl)-benzamide (3)

Resin 1 (142 mg, 0.109 mmol) was swelled in DCM (2 mL) for 1 h and drained. A solution of 3-ethynylpyridine 2 (38 mg, 0.368 mmol) and Et 3 N (200 μL, 1.4 mmol) in DMF (2 mL) was added and the resin agitated for 5 min. A mixture of PdCl 2 (PPh 3 ) 2 (22 mg, 0.031 mmol) and CuI (25 mg, 0.131 mmol) was added and the resin was agitated for 72 h. The resin was drained, washed with DMF (3×2 mL), DCM (3×2 mL) and cleaved with 10% TFA/DCM (1.5 mL) for 20 min. The solution was collected and the resin was rinsed with additional 10% TFA/DCM (1.0 mL). The cleavage fractions were combined, treated with neat TFA (2.0 mL), stirred for 1 h at rt and concentrated by rotary evaporation to give a crude brown residue. Purification by RP-HPLC (C 18 column, CH 3 CN gradient 5-65%, 0.1% TFA, UV analysis 300 nm, 24 min) and lyophilization of the collected fractions afforded 4.4 mg (11% yield) of N-((2R)-hydroxy-(1S)-hydroxycarbamoyl-propyl)-4∝-pyridin-3-yl-buta-1,3-diynyl)-benzamide. LRMS (ES+) m/z 364.0 (C 20 H 17 N 3 O 4 +H requires 364.13); RP-HPLC (300 nm, 24 min run) 11.2 min.

›Example 26

Synthesis of N-(1-(N-hydroxycarbamoyl)(1S,2R)-2-hydroxy propyl){4-[4-(6-morpholin-4-yl(3-pyridyl))buta-1,3-diynyl]phenyl}carboxamide (5)

Preparation of 4-[4-(6-Chloro-pyridin-3-yl)-buta-1,3-diynyl]-benzoic acid methyl ester

4-[4-(6-Chloro-pyridin-3-yl)-buta-1,3-diynyl]-benzoic acid was made according to the method of Wang Shen and Sheela A. Thomas in Org. Lett. 2000, 2 (18), 2857-2860.

A solution of 4-(2,2-dibromo-vinyl)-benzoic acid methyl ester (1) (9.6 g, 30.0 mmol), ethynyl-pyridine (2) (5.43 g, 39.0 mmol), Pd 2 dba 3 (274 mg, 0.3 mmol), tris(4-methoxyphenyl)phosphine (TMPP) (422 mg, 1.2 mmol) were dissolved in argon sparged (5 min.) DMF (60 ml). The reaction was sparged with argon for 1 min. TEA (12.5 ml, 90.0 mmol) was added to the stirred reaction mixture that was then heated under argon at 85° C. for 3 hours. The reaction was found complete by LCMS. The reaction was cooled to rt and diluted with EtOAc/hexane (1:1) (500 ml). The organic phase was washed with 1M NaOH (2×80 ml), water (2×80 ml), sat brine (80 ml), dried with Na 2 SO 4 , filtered and concentrated under reduced pressure to give crude product. The residue was filtered through a filter plug of silica eluting with EtOAc/hexane (1:1). The fractions with product were evaporated to give 9.06 g of product in good purity (˜96% pure). The material was taken on without further purification.

Preparation of 4-[4-(6-Chloro-pyridin-3-yl)-buta-1,3-diynyl]-benzoic acid (3)

A 6M aq. solution of NaOH (15 ml) was added to a stirred solution of 4-[4-(6-Chloro-pyridin-3-yl)-buta-1,3-diynyl]-benzoic acid methyl ester. (9.06 g, 30 mmol) in MeOH (350 ml) at rt. The reaction solution was heated to reflux for 3 hours. The reaction stayed a mixture and did not turn clear. HPLC and LCMS indicated that the reaction was forming side products. The reaction was cooled to rt and some MeOH (˜200 ml) was removed by evaporation under reduced pressure. Water (400 ml) was added to the mixture. Cone. HCl was added drop wise to the stirred solution until acidic by pH paper (pH2). The yellow precipitate that formed was collected by suction filtration. The solid was washed with water (3×20 ml) and hexane (2×20 ml) to give the crude product HPLC indicated that there was approximately 40% product in the mixture. The crude reaction product was purified by flash chromatography using EtOAc (8-10%)/hexane as eluant. The pure fractions were evaporated and dried in vacuo to give 42 g of product 3 in 50% yield.

Preparation of [4-[4-(6-chloro-pyridin-3-yl)-buta-1,3-diynyl]-benzoyl]-HN-Thr(OtBu)-hydroxamic acid trityl resin (4)

4-[4-(6-Chloro-pyridin-3-yl)-buta-1,3-diynyl]-benzoic acid (3) was coupled to a tert-butyl protected threonine pre-loaded on hydroxylamine 2-chlorotrityl resin following the same procedure as used for Example 26. The coupling employed DIC and HOBT. [N-Fmoc-hydroxylamine 2-chlorotrityl resin was purchased from Novabiochem cat.#01-64-0165.]

Preparation of N-(2-Hydroxy-1-hydroxycarbamoyl-propyl)-4-[4-(6-morpholin-4-yl-pyridin-3-yl)-buta-1,3-diynyl]-benzamide (5)

A solution of morpholine (300 uL) in NMP (1 ml) was added to a vial containing the 2-cloropyridine resin (4) (150 mg, 0.12 mmol). The reaction mixture was purged with argon and heated to 85-90° C. for 24 hours. The resin was drained and washed with DMF and DCM alternately several times. The product was cleaved from the resin through treatment with a TFA/water solution (80:20) (1.5 ml) for 45 min. The resin was filtered and washed with fresh TFA/water solution (80:20) (0.5 ml). The combined TFA and organic fractions were diluted with CH3CN/water (1:1) (10 ml), water (2 ml) and lyophilized. The crude product was purified by prep. HPLC. The crude product was dissolved in DMSO (1 ml), passed through a Teflon syringe filter) and the clear filtrate was injected on a preparative HPLC. The purification used a 20×50 mm Ultro 120 C18 column running a 22 ml/min 2% gradient (AcCN/water, 0.1% TFA) for 16 min. The purified fractions were lyophilized to dryness to give 2.2 mg of pure product as the TFA salt (˜32% yield).

›Example 27

Synthesis of 4-[4-(4-Amino-phenyl)-buta-1,3-diynyl]-N-(2-hydroxy-1-hydroxycarbamoyl-propyl)-benzamide (4)

Preparation of 2-{4-[4-(4-Amino-phenyl)-buta-1,3-diynyl]-benzoylamino}-3-tert-butoxycarbonyloxy-butyric hydroxamic acid trityl resin (3)

DIEA (2.7 ml, 15.6 mmol) was added to a stirred solution of 4-[4-(4-Amino-phenyl)-buta-1,3-diynyl]-benzoic acid (2) (1.64 g, 6.3 mmol), HOBT (0.85 g, 6.3 mmol), DIC (0.98 ml, 6.3 mmol) in DMF (50 ml). After 2 min., the Thr hydroxylamine resin (5.8 g, 4.5 mmol) was added in one portion. [N-Fmoc-hydroxylamine 2-chlorotrityl resin was purchased from Novabiochem cat.#01-64-0165.] After 12 hours at rt, the reaction was found complete by LCMS. The resin was drained and washed with DMF and DCM alternately 3 times each. The product on resin 3 was used as is in subsequent reactions without further treatment.

Preparation of 4-[4-(4-Amino-phenyl)-buta-1,3-diynyl]-N-(2-hydroxy-1-hydroxy carbamoyl-propyl)-benzamide (4)

The product (4) (120 mg, 0.09 mmol) was cleaved from the resin through treatment with a TFA/water solution (80:20) (1.5 ml) for 45 min. The resin was filtered and washed with fresh TFA/water solution (80:20) (0.5 ml). The combined TFA and organic fractions were diluted with CH3CN/water (1:1) (10 ml), water (2 ml) and lyophilized. The crude product was purified by prep. HPLC. The crude product was dissolved in DMSO (1 ml), passed through a Teflon syringe filter, and the clear filtrate was injected on a preparative HPLC. The purification used a 20×50 mm Ultro 120 C18 column running a 22 ml/min 2% gradient (AcCN/water, 0.1% TFA) for 16 min. The purified fractions were lyophilized to dryness to give 2.2 mg of pure product as the TFA salt. The product (4) was lyophilized again from CH 3 CN/water with 10 equivalents of HCl to remove most of the TFA to yield 2 mg of product as the HCl salt (˜53% yield).

›Example 28

Synthesis of 4-{4-[4-(2-Dimethylamino-acetylamino)-phenyl]-buta-1,3-diynyl}-N-(2-hydroxy-1-hydroxycarbamoyl-propyl)-benzamide (6) (Continued from compound 3 of Example 27 above)

Preparation of 2-(4-{4-[4-(2-Bromo-acetylamino)-phenyl]-buta-1,3-diynyl}-benzoylamino)-3-tert-butoxycarbonyloxy-butyric acid hydroxamate trityl resin (5)

A solution of bromo-acetyl chloride (0.75 g, 0.58 mmol) in DCM (2 ml) was added to a mixture of 2-{4-[4-(4-Amino-phenyl)-buta-1,3-diynyl]-benzoylamino}-3-tert-butoxycarbonyloxy-butyric acid hydroxamate Trt Resin (3) (0.75 g, 0.58 mmol), lutidine (1.1 ml, 9.2 mmol) and DCM (4 ml) at rt with shaking. After shaking for 1.5 hours, the reaction was found complete by LCMS. The resin was drained and washed with DCM (2×10 ml), DMF (3×10 ml) and DCM (3×10 ml) again. The resin was drained and dried in vacuo. The product on resin 5 was used as is in subsequent reactions without further treatment

Preparation of 4-{4-[4-(2-Dimethylamino-acetylamino)-phenyl]-buta-1,3-diynyl}-N-(2-hydroxy-1-hydroxycarbamoyl-propyl)-benzamide (6)

A solution of dimethyl amine (0.2 ml) in NMP (1.2 ml) was added to bromo acetic Thr Trt Resin (5) (125 mg, 0.09 mmol) at rt with shaking. After shaking for 12 hours, the reaction was found complete by LCMS. The resin was drained and washed with DCM (2×10 ml), DMF (3×10 ml) and DCM (3×10 ml) again. The product (6) was cleaved from the resin through treatment with a TFA/water solution (80:20) (1.5 ml) for 45 min. The resin was filtered and washed with fresh TFA/water solution (80:20) (0.5 ml). The combined TFA and organic fractions were diluted with CH3CN/water (1:1) (10 ml), water (2 ml) and lyophilized. The crude product was purified by prep. HPLC. The crude product was dissolved in DMSO (1 ml), passed through a Teflon syringe filter, and the clear filtrate was injected on a preparative HPLC. The purification used a 20×50 mm Ultra 120 C18 column running a 22 ml/min 2% gradient (AcCN/water, 0.1% TFA) for 16 min. The purified fractions were lyophilized to dryness to give 2 mg of pure product as the TFA salt (˜37% yield).

›Example 29 · 1 of 2

Synthesis of 4-{4-[4-(2-Amino-4-methyl-pentanoylamino)-phenyl]-buta-1,3-diynyl}-N-(2-hydroxy-1-hydroxycarbamoyl-propyl)-benzamide (7) (Continued from compound 3 of Example 27 above)

A solution of Fmoc-L-leucine (0.135 g, 0.38 mmol), HATU (0.146 g, 0.38 mmol) in DMF (1.5 ml) was made. After 2 min. of shaking, the activated acid was added to the amino 1,3-diynyl benzoic Thr Trt Resin (3) (125 mg, 0.09 mmol) at rt with shaking. After shaking for 36 hours, the reaction was drained and washed with DCM (2×4 ml), DMF (3×4 ml) and DCM (3×4 ml) again. The resin was treated with 20% piperizine in DMF (4 ml) for 2 hours twice. The resin was drained and washed with DMF and DCM alternately several times. The product was cleaved from the resin through treatment with a TFA/water solution (80:20) (1.5 ml) for 45 min. The resin was filtered and washed with fresh TFA/water solution (80:20) (0.5 ml). The combined TFA and organic fractions were diluted with CH3CN/water (1:1) (10 ml), water (2 ml) and lyophilized. The crude product was purified by prep. HPLC. The crude product was dissolved in DMSO (1 ml), passed through a Teflon syringe filter, and the clear filtrate was injected on a preparative HPLC. The purification used a 20×50 mm Ultro 120 C18 column running a 22 ml/min 2% gradient (AcCN/water, 0.1% TFA) for 16 min. The purified fractions were lyophilized to dryness to give 1.7 mg of pure product (7) as the TFA salt (˜30% yield).

Examples 30-1307 of Table 1 were synthesized according to the synthetic schemes described above

Biological Protocols and Data

P. aeruginosa LpxC Inhibition Assay

The assay followed the general method of Hyland et al (Journal of Bacteriology 1997 179, 2029-2037: Cloning, expression and purification of UDP-3-O-acyl-GlcNAc deacetylase from Pseudomonas aeruginosa : a metalloamidase of the lipid A biosynthesis pathway) and the radiolabeling procedure is according to Kline et al. supra. Briefly, samples were incubated with 2 nM P. aeruginosa LpxC and 150 nM [3H-Ac]-UDP-3-O—(R-3-hydroxydecanoyl)-GlcNAc in a total volume of 50 uL for 90 min at room temperature. Reactions were carried out in 96-well polypropylene plates in 50 mM sodium phosphate buffer, pH 7.5, containing 1 mg/mL BSA. Reactions were stopped by the addition of 180 uL of a 3% suspension of activated charcoal powder in 100 mM sodium acetate, pH 7.5. Supernatants were clarified by centrifugation. A portion of the clarified supernatant, containing the enzymatically released [3H]-acetate, was transferred to opaque white 96-well plates containing scintillation fluid. The radioactivity was measured in a Perkin-Elmer/Wallac Trilux Microbeta counter. Control reactions to which 5 mM EDTA had been added were included with each run to determine nonspecific tritium release.

Bacterial Screens and Cultures

Bacterial isolates were cultivated from −70° C. frozen stocks by two consecutive overnight passages at 35° C. in ambient air on 5% blood agar (Remel, Lenexa, Kans.). Clinical isolates tested were from a collection composed of isolates collected during clinical trials and recent clinical isolates obtained from various geographically diverse hospitals in the US. Quality control and primary panel strains were from the American Type Culture Collection (ATCC; Rockville, Md.), with the exception of P. aeruginosa PAO200, a strain with a deletion of the mexABoprM genes that was received from Dr. H. Schweizer. This strain does not express the principal multidrug efflux pump and is hypersusceptible to many antibacterials. Strain Z61 (ATCC 35151) is also hypersusceptible to antibacterials. It is thought that the hypersusceptibility of this strain is the result of increased permeability of its outer membrane (Angus B L et al, Antimicrobial Agents and Chemotherapy 1982 21, 299-309: Outer membrane permeability in Pseudomonas aeruginosa : Comparison of a wild-type with an antibacterial-supersusceptible mutant).

Susceptibility Testing

Minimum Inhibitory Concentrations (MICs) were determined by the broth microdilution method in accordance with the National Committee for Clinical Laboratory Standards (NCCLS) guidelines. In brief, organism suspensions were are adjusted to a 0.5 McFarland standard to yield a final inoculum between 3×10 5 and 7×10 5 colony-forming units (CFU)/mL. Drug dilutions and inocula were made in sterile, cation adjusted Mueller-Hinton Broth (Remel). An inoculum volume of 100 μl was added to wells containing 100 μl of broth with 2-fold serial dilutions of drug. All inoculated microdilution trays were incubated in ambient air at 35° C. for 18-24 hours. Following incubation, the lowest concentration of the drug that prevented visible growth was recorded as the MIC. Performance of the assay was monitored by the use of laboratory quality-control strains against tobramycin, that has a defined MIC spectrum, in accordance with NCCLS guidelines.

Efficacy in Mouse Model of Systemic Pseudomonas aeruginosa Infection

Female Balb/c mice were injected intraperitoneally with 0.5 ml of a bacterial suspension containing approximately 100 times the dose that would kill 50% of animals (LD 50 ) of P. aeruginosa strain PAO1 or E. coli ATCC 25922. At one and five hours post infection, the test compound was injected intravenously in doses ranging from 5 mg/kg to 100 mg/kg, five mice per group. Mice were observed for 5 days, and the dose of compound resulting in survival of 50% of mice (ED 50 ) was calculated.

Drug Combination (Synergy) Studies

I. Principle

Checkerboard experiments can be performed to assess potential interactions between primary drug of interest (#1) and other related antibacterials (#2). P. aeruginosa ATCC 27853, S. aureus ATCC 29213 and other organisms can be used as challenge strains as well as selected clinical isolates. Broth microdilution format can be used to assess the activity of drug #1 and test compound alone and in combination. Two-fold dilutions of the two compounds to be tested (each bracketing the expected MIC value) are used. The fractional inhibitory concentration (FIC) was calculated as the MIC of compound #1 in combination with a second compound, divided by the MIC of compound #1 alone. A summation FIC (ΣFIC) was computed for each drug combination as the sum of the individual FICs of compound #1 and #2. Synergy was defined as an ΣFIC≧0.5, indifference as an ΣFIC between 0.5 and 4, and antagonism as ΣFIC>4. The lowest ΣFIC was used for the final interpretation of drug combination studies.

›Example 29 · 2 of 2

Interpretation of Summation (ΣFIC)

a) Synergism, x≦0.5

b) Indifference, 0.5<x≦4

c) Antagonism, x>4

Each of the Example compounds of Table 1 was synthesized and assayed as described above. Many of the Example compounds 1-1307 displayed an IC 50 value of less than 10 μM with respect to LpxC. Many of these compounds displayed an IC 50 value of less than or equal to 1 μM or less than or equal to 0.1 μM. Many of these compounds exhibited IC 50 values of less than or equal to 0.050 μM, less than or equal to 0.030 μM, less than or equal to 0.025 μM, or less than or equal to 0.010 μM.

It should be understood that the organic compounds according to the invention may exhibit the phenomenon of tautomerism. As the chemical structures within this specification can only represent one of the possible tautomeric forms, it should be understood that the invention encompasses any tautomeric form of the drawn structure.

›Tables in the description — 60
AcOH:Acetic acid
aq:Aqueous
ATP:Adenosine triphosphate
Boc:tert-butoxycarbonyl
Boc-Thr(OBn)—OH3-(R)-Benzyloxy-2-(S)-tert-butoxy-
carbonylamino-butyric acid.
DAP or Dap:Diaminopropionate
DCM:4-(Dicyanomethylene)-2-methyl-6-
(4-dimethylaminostyryl)-4H-pyran
DEAD:Diethyl azodicarboxylate
DIEA:Diisopropylethylamine
DME:1,2-dimethoxyethane
DMF:N,N-Dimethylformamide
DMSO:Dimethyl sulfoxide
DPPA:Diphenyl phosphoryl azide
Et 3 N:Triethylamine
EDC:N-(3-Dimethylaminopropyl)-N′-ethylcarbodiimide
EDCI:1-(3-dimethylaminopropyl)3-ethylcarbodiimide
EtOAc:Ethyl acetate
EtOH:Ethanol
Fmoc:9-fluorenylmethoxycarbonyl
Gly-OH:glycine
HATU:O-(7-azabenzotriaazol-1-yl)-N,N,N′N′=
tetramethyluronium hexafluorophophate
HBTU:2-(1H-benzotriazol-1-yl)-1,1,3,3-
tetramethyluronium hexafluorophosphate
Hex:hexane
HOBt:butyl alcohol
HOBT:1-Hydroxybenzotriazole
HPLC:High Pressure Liquid Chromatography
IC 50 value:The concentration of an inhibitor that causes
a 50% reduction in a measured activity.
iPrOH:Isopropanol
LC/MS:Liquid Chromatography/Mass Spectrometry
LRMS:Low Resolution Mass Spectrometry
MeOH:Methanol
NaOMe:sodium methoxide
nm:Nanometer
NMP:N-Methylpyrrolidone
PPh 3 :triphenyl phosphine
RP-HPLC:Reversed-phase high-pressure liquid
chromatography
RT:Room temperature
sat:Saturated
TEA:Triethylamine
TFA:Trifluoroacetic acid
THF:Tetrahydrofuran
Thr:Threonine
TLC:Thin Layer Chromatography
Trt-Br:Tert-butyl bromide
ReagentMWEq.g/mlmmol
Benzoic acid (1)219.021.02.152 g9.83
L-Thr-OMe-HCl169.611.21.968 g11.6
EDCI191.711.22.218 g11.6
HOBt135.131.11.410 g10.4
DIEA129.254.06.8 mL39.0
DMF60 mL
ReagentMWEq.g/mlmmol
4-biphenylcarboxaldehyde182.221.01.104 g6.06
L-Thr-OMe-HCl169.611.01.030 g6.07
NaBH(OAc) 3211.941.41.800 g8.49
Et 3 N101.192.01.70 mL12.1
THF25 mL
ReagentMWEQg/mlmmol
H-allo-Thr-OMe•HCl (1)169.71.22.0 g12.0
Trt-Br323.241.03.23 g10.0
DIEA129.253.05.2 ml30.0
CHCl 3 (dry)100 ml
ReagentMWEq.g/mlmmol
Trt-allo-Thr-OMe (2)375.461.04.08 g10.88
PPh 3262.291.02.85 g10.88
DEAD (neat)174.161.62.93 ml17.82
DPPA275.72.76.40 ml29.7
THF (dry)50 ml
ReagentMWEQg/mlmmol
Trt-Azido-Thr-OMe (3)400.471.04.79 g11.98
TFA57 ml
CHCl 3 (dry)3 ml
ReagentMWEQg/mlmmol
Azido-Thr-OMe•HCl (4)194.621.0195 mg1.0
Biphenyl Acid (5)226.271.0226 mg1.0
HOBT1531.0158 mg1.0
EDC•HCl191.171.3249 mg1.3
DIEA129.252.50.44 ml2.5
DCM (dry)10 ml
ReagentMWEQg/mlmmol
Biphenyl Azido-Thr (6)366.411.0244 mg0.67
10% Pd/C200 mg
H 2 (gas)12″ balloon
MeOH (dry)10 ml
ReagentMWEQg/mlmmol
Amino-Thr-OMe (7)340.421.0225 mg0.66
H 2 NOH•HCl69.4910.0460 mg6.6
NaOMe54.02~12.0~430 mg7.92
MeOH (dry)7 ml
DCM (dry)5 ml
ReagentMWEq.g/mLmmol
Amine (1)314.381.00.944g3.00
Dicarboxylic acid (2)242.231.91.360g5.61
BOP442.31.52.007g4.54
DIEA129.253.31.7mL9.76
DMF200mL
ReagentMWEq.g/mLmmol
Biphenylcarboxylic538.591.00.200g0.371
acid (3)
Amine (4)174.241.10.071g0.407
EDCI191.711.10.078g0.407
HOBt135.131.00.052g0.385
DIEA129.252.7180μL1.0
DMF2mL
ReagentMWEq.g/mLmmol
Boc-protected amine (6)514.571.000.080g0.155
TFA3.0mL
CH 2 Cl 23.0mL
ReagentMWEQg/mlmmol
Fmoc-DAP-H (1)326.41.0980 mg3.0
Acetic anhydride102.091.5425 uL4.5
Pyridine79.12.0483 uL6.0
THF20 ml
ReagentMWEQg/mlmmol
H 2 N—O-Trt Resin1.0120 mg0.113
Fmoc-DAP(Ac)-H (1)368.45.0980 mg0.564
HATU3805.00.146 g0.564
DIEA129.2510.0196 ul1.13
NMP1.7 ml
ReagentMWEQg/mlmmol
Fmoc-DAP(Ac)-Trt Resin (3)1.0120 mg0.113
4′-Etbiphenyl 4-carboxy acid226.35.091 mg0.4
HATU3805.0152 mg0.4
DIEA129.2510.0140 ul0.8
NMP1.0 ml
ReagentMWEQg/mlmmol
Biphenyl-DAP(Alloc)-Trt Resin (1)1.0500 mg0.35
Dimethyl barbituric acid156.1410.0600 mg3.5
Pd(PPh 3 ) 41135.61.0438 mg0.35
PPh 3262.32.0202 mg0.7
DCM11.0 ml
ReagentMWEQg/mlmmol
Biphenyl-DAP-Trt Resin (2)1.0160 mg0.11
Methanesulfonyl chloride114.5510.085 uL1.1
Lutidine107.1615.0190 uL1.6
DCM1.5 ml
ReagentMWEQg/mlmmol
Biphenyl-DAP-Trt Resin (2)1.0125 mg0.096
Dimethylcarbamyl chloride107.510.0103 mg0.96
Lutidine107.1620.0225 uL1.92
DCM1.5 ml
ReagentMWEQg/mlmmol
Biphenyl-DAP-hydroxamate (1)327.41.020mg0.096
Boc-amino-acetaldehyde159.194.06.4mg0.4
NaBH 3 CN62.8410.03.1mg0.05
Acetic acid60.0520.06uL1.00
DCM1.5ml
ReagentMWEQg/mlmmol
Iodo-benzoate 12621.020.0g76.34
Ethynyl-benzene 21021.18.56g83.96
PdCl 2 (PPh 3 ) 27020.0120.65g0.92
CuI1900.0240.35g1.83
TEA1011.516ml114.5
THF (dry & sparged110ml
with argon for
5 min.)
d = 0.726
ReagentMWEQg/mlmmol
4-Phenylethynyl-benzoic acid (3)2221.01.55g7.0
Threonine methyl ester•HCl169.651.41.66g9.8
HBTU3801.02.66g7.0
DIEA125.282.53.05ml17.5
DMF21ml
ReagentMWEQg/mlmmol
Tolanoic-Thr-OMe (4)340.421.02.34g7.0
H 2 NOH•HCl69.4910.04.81g70.0
NaOMe54.02>11.0>4.16g>77.0
MeOH (dry)50ml
DCM (dry)30ml
ReagentMWEq.g/mlmmol
Amino-Thr-OMe (9)362.381.0726mg2.0
PPh 3262.291.0526mg2.0
H 2 NOH•HCl69.4910.01.4g20.0
NaOMe54.02~12.01.3g24.0
THF (dry)20ml
MeOH (dry)20ml
ReagentMWEq.g/mlmmol
Boc-Gly-OH175.191.001.752g10.0
4-Iodoaniline (1)219.031.042.290g10.4
EDCI191.711.041.994g10.4
HOBt135.131.001.351g10.0
DCM18mL
DMF1mL
ReagentMWEq.g/mLmmol
4-Ethynylbenzoic acid (3)146.141.00.910g6.22
H-Dap(Boc)—OMe—HCl254.711.21.903g7.47
EDCI191.711.21.432g7.47
HOBt135.131.10.910g6.73
DIEA129.253.23.5mL20.0
DMF50mL
ReagentMWEQg/mlmmol
H-DAP(Boc)-OMe (1)2541.055.93g23.3
4-Iodo-benzoic acid2481.05.49g22.2
HOAT136.11.023.08g22.6
EDC191.711.024.33g22.6
DIEA129.252.59.7ml55.1
DMF85ml
ReagentMWEq.g/mlmmol
Ethynylbenzene (1)261.271.00.745g2.85
4-Iodobenzaldehyde (2)232.001.40.902g3.89
PdCl 2 (PPh 3 ) 2701.890.030.070g0.10
CuI190.440.060.034g0.18
Et 3 N101.192.30.90mL6.5
THF50mL
ReagentMWEq.g/mlmmol
Tolanylaldehyde (3)365.381.00.822g2.25
Morpholine87.121.30.260mL2.97
NaBH(OAc) 3211.941.40.670g3.16
THF15ml
ReagentMWEq.g/mlmmol
Methyl ester (4)436.501.00.829g1.90
NH 2 OH—HCl69.493.00.400g5.76
NaOMe (25 wt %)54.024.51.860g8.60
MeOH8mL
THF3mL
ReagentMWEq.g/mLmmol
Fmoc-threonine/resin (1)0.70 mmol/g1.00.522g0.365
4-Ethynylbenzoic acid (2)146.143.00.160g1.10
DIC126.204.90.28mL1.79
HOBt135.133.00.148g1.10
DIEA129.256.30.40mL2.30
DCM1.0mL
DMF3.0mL
ReagentMWEq.g/mLmmol
Alkyne on resin (3)0.70 mmol/g1.0100mg0.070
1-Iodo-3-nitrobenzene (4)249.015.087.1mg0.350
PdCl 2 (PPh 3 ) 2701.890.210.0mg0.014
CuI190.440.57.0mg0.036
Et 3 N101.1915150μL1.10
DMF1.5mL
ReagentMWEq.g/mLmmol
Fmoc-Dap/resin (1)0.70 mmol/g1.01.330g0.931
4-Ethynylbenzoic acid (2)146.143.00.408g2.793
DIC126.204.80.70mL4.470
HOBt135.133.00.377g2.793
DIEA129.256.21.0mL5.7
DCM10.0mL
DMF2.0mL
ReagentMWEq.g/mLmmol
Alkyne on resin (3)0.70 mmol/g1.0120mg0.084
4-CF 3 O-iodobenzene (4)287.994.096.8mg0.336
PdCl 2 (PPh 3 ) 2701.890.318.0mg0.025
CuI190.440.58.0mg0.042
Et 3 N101.1913150μL1.10
DMF2.0mL
ReagentMWEQg/mlmmol
H-DAP(Boc)-OMe2541.055.12g20.1
1,3-diynyl benzoic acid (1)261.31.05.0g19.1
HOBT135.11.052.72g20.1
EDC191.711.053.85g20.1
DIEA129.253.010.5ml60.3
DMF80ml
ReagentMWEq.g/mlmmol
Methyl 4-iodobenzoate (2)262.041.04.510g17.2
Trimethylsilylbutadiyne (1)122.242.55.240g42.8
PdCl 2 (PPh 3 ) 2701.890.040.483g0.690
CuI190.440.080.262g1.37
Et 3 N101.193.07.2mL52.0
CH 3 CN50mL
ReagentMWEq.g/mlmmol
Methyl ester (3)252.341.03.420g13.5
KOH56.114.93.700g65.9
H 2 O10mL
THF26mL
ReagentMWEq.g/mLmmol
Hydroxylamine resin (1)0.77 mmol/g1.03.288g2.53
Fmoc-Dap(Boc)-OH426.273.03.175g7.44
HATU380.253.02.829g7.44
DIEA129.2510.04.3mL24.7
DMF35mL
ReagentMWEq.g/mLmmol
Fmoc-Dap(Boc)/resin (2)0.71 mmol/g1.03.530g2.53
Butadiynyl benzoic acid (3)170.162.51.076g6.32
EDCI191.713.01.457g7.60
HOBt135.133.01.048g7.75
DIEA129.255.02.2mL12.6
DCM25mL
DMF5mL
ReagentMWEq.g/mLmmol
Diacetylene on resin (4)0.77 mmol/g1.0176mg0.135
1-Iodo-3-nitrobenzene (5)249.013.5118mg0.474
PdCl 2 (PPh 3 ) 2701.890.076.0mg0.009
CuI190.440.3810.0mg0.052
Et 3 N101.1910.6200μL1.43
DMF3.0mL
ReagentMWEq.g/mLmmol
Alkyne on resin (1)0.77 mmol/g1.0145mg0.111
4-Ethynylbenzamide (2)430.542.6124mg0.288
PdCl 2 (PPh 3 ) 2701.890.321mg0.030
CuI190.441.022mg0.110
Et 3 N101.196.5100μL0.72
DMF2.0mL
ReagentMWEq.g/mLmmol
Hydroxylamine resin (1)0.77 mmol/g1.03.188g2.45
Fmoc-Thr(tBu)-OH397.503.02.927g7.36
HATU380.253.02.798g7.36
DIEA129.2510.04.3mL24.6
DMF40mL
ReagentMWEq.g/mLmmol
Fmoc-threonine/resin (2)0.77 mmol/g1.02.030g1.56
Butadiynyl benzoic acid (3)170.162.30.617g3.63
EDCI191.712.80.834g4.35
HOBt135.132.80.588g4.35
DIEA129.253.71.0mL5.7
DCM15mL
DMF4mL
ReagentMWEq.g/mLmmol
Diacetylene on resin (1)0.77 mmol/g1.0100mg0.077
3-Iodobenzylamine HCl (3)269.514.083.0mg0.308
PdCl 2 (PPh 3 ) 2701.890.211.0mg0.016
CuI190.440.57.0mg0.037
Et 3 N101.1923250μL1.80
DMF1.5mL
ReagentMWEq.g/mLmmol
Diacetylene on resin (1)0.77 mmol/h1.01.00g0.770
4-Iodobenzaldehyde232.004.0715mg3.081
PdCl 2 (PPh 3 ) 2701.890.0740.0mg0.057
CuI190.440.1319.0mg0.100
Et 3 N101.199.31.00mL7.17
DMF20.0mL
ReagentMWEq.mg/μLmmol
Benzaldehyde on resin (3)0.77 mmol/g1.0188mg0.141
Morpholine87.126.075μL0.860
NaCNBH 362.844.540mg0.637
Trimethyl orthoformate106.126.5100μL0.914
Acetic acid60.0512.3100μL1.750
THF3.0mL
MeOH1.0mL
ReagentMWEq.g/mLmmol
4-Ethynylbenzoic acid (1)146.141.00.292g2.00
N-Trityl ethylenediamine302.411.30.810g2.67
EDCI191.711.00.382g2.00
HOBt135.133.00.270g2.00
DIEA129.254.01.40mL8.00
DMF10.0mL
ReagentMWEq.g/mLmmol
Alkyne on resin (4)0.77 mmol/g1.00150mg0.116
4-Ethynylbenzamide (3)430.543.00151mg0.350
PdCl 2 (PPh 3 ) 2701.890.2521mg0.030
CuI190.441.2528mg0.147
Et 3 N101.199.50150μL1.10
DMF2.0mL
ReagentMWEq.g/mLmmol
Alkyne on resin (1)0.77 mmol/g1.0142mg0.109
3-Ethynylpyridine (2)103.123.438mg0.368
PdCl 2 (PPh 3 ) 2701.890.322mg0.031
CuI190.441.225mg0.131
Et 3 N101.1913200μL1.40
DMF2.0mL
ReagentMWEQg/mlmmol
Dibromovinylbenzoic acid (1)3201.09.6g30.0
2-Chloro-5-ethynyl-pyridine1381.35.43g39.0
Pd 2 dba 39150.01274mg0.3 (1% cat.)
TMPP3520.04422mg1.2 (4%)
TEA1013.012.5ml90.0
DMF90mldegassed with argon
ReagentMWEQg/mlmmol
H-Thr(Boc)-NHO-Trt Resin (1)1.05.8g4.47
1,3-diynyl benzoic acid (2)261.31.41.64g6.25
HOBT135.11.40.85g6.25
DIC126.21.40.98ml6.25
DIEA129.253.52.7ml15.6
DMF50ml
ReagentMWEQg/mlmmol
1,3-diynyl benzoic Thr Resin (3)1.0120mg0.09
TFA/water (80:20)1.5ml
ReagentMWEQg/mlmmol
Amino 1,3-diynyl benzoic Thr Trt Resin (3)1.00.75g0.578
Bromo-acetyl chloride157.48.00.728g4.62
Lutidine10710.01.07ml9.24
DMF6ml
ReagentMWEQg/mlmmol
Bromo acetic Thr Trt Resin (5)1.0125mg0.093
Dimethyl amine45.080.2mlexcess
NMP1.2ml
ReagentMWEQg/mlmmol
Amino 1,3-diynyl benzoic Thr Trt Resin (3)1.0125mg0.093
Fmoc-L-leucine353.424.00.135g0.384
HATU3804.00.146g0.384
DIEA129.258.0133ul0.768
DMF1.5ml
TABLE 2 — Demonstration of Antibacterial activity of Select Compounds from Table 1 Enzyme inhibitory activity Compound
Example #IC 50 (nM)
12<100 nM
572<100 nM
481<100 nM
19<100 nM
516<100 nM
280<100 nM
366<100 nM
777<100 nM
315<100 nM
779<100 nM
860<100 nM
801<100 nM
13<100 nM
TABLE 3 — Antibacterial activity vs standard panel of organisms (MIC, μg/ml). Bacterial strain: Compound P. aeruginosa E. coli S. aureus hyper-permeable P. aeruginosa
Example #278532592229213P. aerug. 35151PAO200 mexAB
12AACAA
572AACAA
481AACAA
19AABAA
516AACAA
280AACAA
366AACAA
777AACAA
315AACAA
779AACAA
860AACAA
801AACAA
13AACAAA
MIC Key
MIC's of 6.25 ug/ml or less = A
MIC's of greater than 6.25 ug/ml to 50 ug/ml = B
MIC's of greater than 50 ug/ml = C
TABLE 4 — Antibacterial activity vs cystic fibrosis isolates of Pseudomonas aeruginosa (MIC, μg/ml). Strains have the following phenotypes: 3198 and 3236, sensitive to most antibacterials; 2196, resistant to ciprofloxacin; 3224, resistant to ceftazidime; 3317, resistant to aztreonam; 1145 and 3206, multi-drug resistant. Strain number:
31983236219632243232331711453206
Phenotype:
SensitiveSensitiveCipro RTobra RCeftaz. RAztr. RMDRMDR
LpxC inhibitors
12AABAAAAA
481AAAAAAAA
19AAAAAAAA
516AAAAAAAA
280AABAAAAA
366AAAAAAAA
777AAAAAAAA
315AAAAAAAA
779AAAAAAAA
801AAAAAAAA
13AAAAAAAA
Comparator
antibacterials
Tobramycin20.5264128-3264
Aztreonam10.511164>128>128
Ceftazidime20.2522644>128>128
Cefepime422828>12832
Ciprofloxacin10.06>8220.54>8
MIC Key
MIC's of 6.25 ug/ml or less = A
MIC's of greater than 6.25 ug/ml to 50 ug/ml = B
MIC's of greater than 50 ug/ml = C
TABLE 6 — Antibacterial activity vs non-CF clinical isolates of P. aeruginosa and vs other gram- negative pathogens, continued. Set 2: enteric organisms. E. aer. , Enterobacter aerogenes ; E. clo. , Enterobacter cloacae ; E. coli , Escherichia coli ; K. pneu. , Klebsiella pneumoniae ; K. oxy. , Klebsiella oxytoca ; P. mir. , Proteus mirabilis ; S. marc. , Serratia marcescens. Species: E. aer. E. clo.
E. coli 1619E. coli 2788
K. pneu.
K. oxy.
P. mir.
S. marc.
LpxC inhibitors
12CAAAAAAA
481CAAAAAAA
19AAAAAAAA
516CBABCCCA
280CAAABCBB
366CAAABBAA
777BAAAAAAA
315CAAACCCB
779CAAABBBA
801BAAAAAAA
13CAAAAAAA
Comparator
antibacterials
Tobramycin640.0616/640.06/264122
Aztreonam<=0.13128/64<=0.13/0.2520.5<=0.13<=0.13
Ceftazidime320.25>1280.25/<=0.1380.25<=0.130.25
Cefepime<=0.134/<=0.13<=0.138<=0.13<=0.13<=0.13
Meropenem2<=0.060.25/0.13<=0.060.13<=0.060.50.13
Pip/Tazo2>1281>12820.251
Ciprofloxacin>80.01520.030.060.030.030.25
MIC Key
MIC's of 6.25 ug/ml or less = A
MIC's of greater than 6.25 ug/ml to 50 ug/ml = B
MIC's of greater than 50 ug/ml = C
TABLE 7 — Drug Combination (Synergy) Studies Result Minimum Concentration (mg/ml) required to inhibit grouth of E. coli 25922
ErythromycinLpxC inhibitor 925
LpxC inhibitor 925 only—6.25
Erythromycin only128—
LpxC inhibitor 925 +20.78
erythromycin
TABLE 1 — Exam-
pleStructure
30
31
32
33
34
35
36
37
38
39
40
41
42
43
44
45
46
47
48
49
50
51
52
53
54
55
56
57
58
59
60
61
62
63
64
65
66
67
68
69
70
71
72
73
74
75
76
77
78
79
80
81
82
83
84
85
86
87
88
89
90
91
92
93
94
95
96
97
98
99
100
101
102
103
104
105
106
107
108
109
110
111
112
113
114
115
116
117
118
119
120
121
122
123
124
125
126
127
128
129
130
131
132
133
134
135
136
137
138
139
140
141
142
143
144
145
146
147
148
149
150
151
152
153
154
155
156
157
158
159
160
161
162
163
164
165
166
167
168
169
170
171
172
173
174
175
176
177
178
179
180
181
182
183
184
185
186
187
188
189
190
191
192
193
194
195
196
197
198
199
200
201
202
203
204
205
206
207
208
209
210
211
212
213
214
215
216
217
218
219
220
221
222
223
224
225
226
227
228
229
230
231
232
233
234
235
236
237
238
239
240
241
242
243
244
245
246
247
248
249
250
251
252
253
254
255
256
257
258
259
260
261
262
263
264
265
266
267
268
269
270
271
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273
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277
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285
286
287
288
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291
292
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296
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300
301
302
303
304
305
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307
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309
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313
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315
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318
319
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321
322
323
324
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326
327
328
329
330
331
332
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334
335
336
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338
339
340
341
342
343
344
345
346
347
348
349
350
351
352
353
354
355
356
357
358
359
360
361
362
363
364
365
366
367
368
369
370
371
372
373
374
375
376
377
378
379
380
381
382
383
384
385
386
387
388
389
390
391
392
393
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396
397
398
399
400
401
402
403
404
405
406
407
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410
411
412
413
414
415
416
417
418
419
420
421
422
423
424
425
426
427
428
429
430
431
432
433
434
435
436
437
438
439
440
441
442
443
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445
446
447
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449
450
451
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453
454
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457
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459
460
461
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463
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468
469
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473
474
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477
478
479
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481
482
483
484
485
486
487
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489
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491
492
493
494
495
496
497
498
499
500
501
502
503
504
505
506
507
508
509
510
511
512
513
514
515
516
517
518
519
520
521
522
523
524
525
526
527
528
529
530
531
532
533
534
535
536
537
538
539
540
541
542
543
544
545
546
547
548
549
550
551
552
553
554
555
556
557
558
559
560
561
562
563
564
565
566
567
568
569
570
571
572
573
574
575
576
577
578
579
580
581
582
583
584
585
586
587
588
589
590
591
592
593
594
595
596
597
598
599
600
601
602
603
604
605
606
607
608
609
610
611
612
613
614
615
616
617
618
619
620
621
622
623
624
625
626
627
628
629
630
631
632
633
634
635
636
637
638
639
640
641
642
643
644
645
646
647
648
649
650
651
652
653
654
655
656
657
658
659
660
661
662
663
664
665
666
667
668
669
670
671
672
673
674
675
676
677
678
679
680
681
682
683
684
685
686
687
688
689
690
691
692
693
694
695
696
697
698
699
700
701
702
703
704
705
706
707
708
709
710
711
712
713
714
715
716
717
718
719
720
721
722
723
724
725
726
727
728
729
730
731
732
733
734
735
736
737
738
739
740
741
742
743
744
745
746
747
748
749
750
751
752
753
754
755
756
757
758
759
760
761
762
763
764
765
766
767
768
769
770
771
772
773
774
775
776
777
778
779
780
781
782
783
784
785
786
787
788
789
790
791
792
793
794
795
796
797
798
799
800
801
802
803
804
805
806
807
808
809
810
811
812
813
814
815
816
817
818
819
820
821
822
823
824
825
826
827
828
829
830
831
832
833
834
835
836
837
838
839
840
841
842
843
844
845
846
847
848
849
850
851
852
853
854
855
856
857
858
859
860
861
862
863
864
865
866
867
868
869
870
871
872
873
874
875
876
877
878
879
880
881
882
883
884
885
886
887
888
889
890
891
892
893
894
895
896
897
898
899
900
901
902
903
904
905
906
907
908
909
910
911
912
913
914
915
916
917
918
919
920
921
922
923
924
925
926
927
928
929
930
931
932
933
934
935
936
937
938
939
940
941
942
943
944
945
946
947
948
949
950
951
952
953
954
955
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ExampleNameMH+
303,4-difluoro-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide275.2
31(2S,3R)-N,3-dihydroxy-2-[(4-phenylbutanoyl)amino]butanamide281.3
32(2S,3R)-N,3-dihydroxy-2-({4-[4-(methyloxy)phenyl]butanoyl}amino)butanamide311.3
33N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-5-phenylpentanamide295.3
34(2E,4E)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-5-phenylpenta-2,4-dienamide291.3
35(2E)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-3-phenylprop-2-enamide265.3
36(2S,3R)-3-hydroxy-2-({(2E)-3-[4-(methyloxyphenyl]prop-2-enoyl}amino)butanoic acid280.3
37(3R)-3-amino-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-5-phenylpentanamide310.4
38(2E)-3-(4-fluorophenyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}prop-2-enamide283.3
39(2E)-3-(3-bromophenyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}prop-2-enamide344.2
40N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[(2-phenylethyl)amino]methyl}benzamide372.4
41N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[(4-phenylbutyl)amino]methyl}benzamide400.5
424-[(cyclopropylamino)methyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide308.3
434-[(hexylamino)methyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide352.4
44N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[(2-pyridin-2-ylethyl)amino]methyl}benzamide373.4
45N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(4-methylpiperazin-1-yl)benzamide337.4
46N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(piperidin-1-ylmethyl)benzamide336.4
47N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(morpholin-4-ylmethyl)benzamide338.4
48N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({[3-(2-oxopyrrolidin-1-yl)propyl]amino}methyl)benzamide393.5
49N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[(3-phenylpropyl)amino]methyl}benzamide386.5
50(2S,5R)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-5-phenylpyrrolidine-2-carboxamide308.3
51(2R,5S)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-5-phenylpyrrolidine-2-carboxamide308.3
52(2S,3R)-2-{[(3S)-3-amino-4-phenylbutanoyl]amino}-N,3-dihydroxybutanamide296.3
53(2S,3R)-2-{[(2S)-2-amino-4-phenylbutanoyl]amino}-N,3-dihydroxybutanamide296.3
54N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-6-(2-pyrrolidin-1-ylethyl)pyridine-3-carboxamide337.4
552-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}-3-hydroxy-3-methylbutanoic acid342.4
562-{[4-(4-ethylphenyl)phenyl]carbonylamino}-3-hydroxy-4-methylpentanoic acid356.4
57{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}(thien-2-yl)acetic acid366.5
58N-(2-{[(1,1-dimethylethyl)oxy]amino}-2-oxo-1-thien-2-ylethyl)-4′-ethyl-1,1′-biphenyl-4-carboxamide437.6
593-(dimethylamino)-2-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}propanoic acid341.4
604′-ethyl-N-{(1S)-1-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]-3-methylbutyl}-456.6
1,1′-biphenyl-4-carboxamide
614′-ethyl-N-[(1S)-2-({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)-2-oxo-1-(phenylmethyl)ethyl]-490.6
1,1′-biphenyl-4-carboxamide
62(2S)-1-[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}pyrrolidine-2-carboxamide440.5
634′-ethyl-N-[(1S)-2-({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)-1-(1H-imidazol-4-ylmethyl)-2-oxoethyl]-1,1′-480.5
biphenyl-4-carboxamide
64(3S)-2-[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-502.6
1,2,3,4-tetrahydroisoquinoline-3-carboxamide
65(2S)-2-[(1,1′-biphenyl-4-ylacetyl)amino]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-methylpentanamide442.5
66(2S,3R)-2-({(2S)-2-[(1,1′-biphenyl-4-ylacetyl)amino]-3-phenylpropanoyl}amino)-N,3-dihydroxybutanamide476.5
67(2S,3R)-2-{[(2S)-2-[(1,1′-biphenyl-4-ylacetyl)amino]-3-(4-hydroxyphenyl)propanoyl]amino}-N,3-dihydroxybutanamide492.5
68(2S)-1-(1,1′-biphenyl-4-ylacetyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}pyrrolidine-2-carboxamide426.5
69(2S,3R)-2-{[(2S)-2-[(1,1′-biphenyl-4-ylacetyl)amino]-3-(1H-imidazol-4-yl)propanoyl]amino}-N,3-dihydroxybutanamide466.5
70(2S)-2-[(1,1′-biphenyl-4-ylacetyl)amino]-N-1-[(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}pentanediamide457.5
71(3S)-3-[(1,1′-biphenyl-4-ylacetyl)amino]-4-({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)-4-oxobutanoic acid444.5
72(2S,4R)-1-[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]-4-hydroxy-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}pyrrolidine-456.5
2-carboxamide
73N-[(1S)-1-(aminomethyl)-2-({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)-2-oxoethyl]-429.5
4′-ethyl-1,1′-biphenyl-4-carboxamide
744′-ethyl-N-{(1S)-1-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]but-3-ynyl}-1,1′-biphenyl-4-carboxamide438.5
75(2S,3R)-2-({(2S)-2-[(1,1′-biphenyl-4-ylacetyl)amino]propanoyl}amino)-N,3-dihydroxybutanamide400.4
76(2S,4R)-1-(1,1′-biphenyl-4-ylacetyl)-4-hydroxy-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}pyrrolidine-2-carboxamide442.5
774′-ethyl-N-{(1R,2R)-2-hydroxy-1-[(hydroxy{[(2-hydroxyethyl)amino]carbonyl}amino)methyl]propyl}-1,1′-biphenyl-4-carboxamide416.5
78N-((2R,3R)-2-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}-3-hydroxybutyl)-N-hydroxymorpholine-4-carboxamide442.5
79N-((2R,3R)-2-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}-3-hydroxybutyl)-N-hydroxy-4-methylpiperazine-1-carboxamide455.6
80N-((1R,2R)-1-{[[(cyclopropylamino)carbonyl](hydroxy)amino]methyl}-2-hydroxypropyl)-4′-ethyl-1,1′-biphenyl-4-carboxamide412.5
814′-ethyl-N-{(1R,2R)-2-hydroxy-1-[(hydroxy{[(pyridin-3-ylmethyl)amino]carbonyl}amino)methyl]propyl}-1,1′-biphenyl-4-carboxamide463.5
824′-ethyl-N-{(1R,2R)-2-hydroxy-1-[(hydroxy{[(2-pyridin-2-ylethyl)amino]carbonyl}amino)methyl]propyl}-1,1′-biphenyl-4-carboxamide477.6
834′-ethyl-N-{(1R,2R)-2-hydroxy-1-[(hydroxy{[(4-morpholin-4-ylphenyl)amino]carbonyl}amino)methyl]propyl}-533.6
1,1′-biphenyl-4-carboxamide
84N-1-((2R,3R)-2-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}-3-hydroxybutyl)-N-1-hydroxypiperidine-1,4-dicarboxamide483.6
854′-ethyl-N-[2-(hydroxyamino)ethyl]-1,1′-biphenyl-4-carboxamide285.4
86N{2-[(aminocarbonyl)(hydroxy)amino]ethyl}-4′-ethyl-1,1′-biphenyl-4-carboxamide328.4
87N-{2-[(aminocarbonothioyl)(hydroxy)amino]ethyl}-4′-ethyl-1,1′-biphenyl-4-carboxamide344.4
88N-{2-[({[2-(dimethylamino)ethyl]amino}carbonyl)(hydroxy)amino]ethyl}-4′-ethyl-1,1′-biphenyl-4-carboxamide399.5
89N-{2-[{[(2-cyanoethyl)amino]carbonyl}(hydroxy)amino}ethyl}-4′-ethyl-1,1′-biphenyl-4-carboxamide381.4
904′-ethyl-N-[2-(hydroxy{[(2-hydroxyethyl)amino]carbonyl}amino)ethyl]-1,1′-biphenyl-4-carboxamide372.4
91N-(2-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}ethyl)-N-hydroxymorpholoine-4-carboxamide398.5
92N-(2-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}ethyl)-N-hydroxy-4-methylpiperazine-1-carboxamide411.5
93N-1-(2-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}ethyl)-N-1-hydroxypiperidine-1,4-dicarboxamide439.5
94N-(2-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}ethyl)-N-hydroxypyrrolidine-1-carboxamide382.5
95N-{2-[[(cyclopropylamino)carbonyl](hydroxy)amino]ethyl}-4′-ethyl-1,1′-biphenyl-4-carboxamide368.4
964′-ethyl-N-{2-[hydroxy({[2-(methyloxy)ethyl]amino}carbonyl)amino]ethyl}-1,1′-biphenyl-4-carboxamide386.5
97N-{2-[({[2-(acetylamino)ethyl]amino}carbonyl)(hydroxy)amino]ethyl}-4′-ethyl-1,1′-biphenyl-4-carboxamide413.5
984′-ethyl-N-{2-[hydroxy({[3-(2-oxopyrrolidin-1-yl)propyl]amino}carbonyl)amino]ethyl}-1,1′-biphenyl-4-carboxamide453.6
994′-ethyl-N-[2-(hydroxy{[(3-hydroxypropyl)amino]carbonyl}amino)ethyl]-1,1′-biphenyl-4-carboxamide386.5
1004′-ethyl-N-{2-[hydroxy({[3-(methyloxy)propyl]amino}carbonyl)amino]ethyl}-1,1′-biphenyl-4-carboxamide400.5
101N-(2-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}ethyl}-N-hydroxy-1,4′-bipiperidine-1′-carboxamide479.6
1024′-ethyl-N-[2-(hydroxy{[(2-pyridin-2-ylethyl)amino]carbonyl}amino)ethyl]-1,1′-biphenyl-4-carboxamide433.5
1034′-ethyl-N-[2-(hydroxy{[(pyridin-3-ylmethyl)amino]carbonyl}amino)ethyl]-1,1′-biphenyl-4-carboxamide419.5
1044′-ethyl-N-[2-(hydroxy{[(4-morpholin-4-ylphenyl)amino]carbonyl}amino)ethyl}-1,1′-biphenyl-4-carboxamide489.6
105N-(2-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino)ethyl}-N,3-dihydroxypiperidine-1-carboxamide412.5
106N-{2-[{[(3-aminocyclohexyl)amino]carbonyl}(hydroxy)amino]ethyl]-4′-ethyl-1,1′-biphenyl-4-carboxamide425.5
107N-(2-[{[(2-aminoethyl)amino]carbonyl}(hydroxy)amino]ethyl}-4′-ethyl-1,1′-biphenyl-4-carboxamide371.4
108N-{2-[{[(3-aminopropyl)amino]carbonyl}(hydroxy)amino]ethyl}-4′-ethyl-1,1′-biphenyl-4-carboxamide385.5
1091,1-dimethyl-3-({[(2-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}ethyl)(hydroxy)amino]carbonyl}amino)propylcarbamate485.6
1104′-ethyl-N-{2-[({[(4-fluorophenyl)methyl]amino}carbonyl)(hydroxy)amino]ethyl}-1,1′-biphenyl-4-carboxamide436.5
111N-(2-{[(4′-ethyl-1,1,4 -biphenyl-4-yl)carbonyl]amino}ethyl)-N-hydroxy-3-[(trifluoroacetyl)amino]pyrrolidine-1-carboxamide493.5
112N-{2-[{[(4-aminothien-3-yl)amino]carbonyl}(hydroxy)amino]ethyl}-4′-ethyl-1,1′-biphenyl-4-carboxamide425.5
1134′-ethyl-N-(2-{hydroxy[(piperidin-3-ylamino)carbonyl]amino}ethyl)-1,1′-biphenyl-4-carboxamide411.5
1144′-ethyl-N-(2-{hydroxy[(piperidin-4-ylamino)carbonyl]amino}ethyl)-1,1′-biphenyl-4-carboxamide411.5
1154′-ethyl-N-[2-(hydroxy{[(piperidin-2-ylmethyl)amino]carbonyl}amino)ethyl]-1,1′-biphenyl-4-carboxamide425.5
1164′-ethyl-N-[2-(hydroxy{[(piperidin-3-ylmethyl)amino]carbonyl}amino)ethyl]-1,1′-biphenyl-4-carboxamide397.5
1173-amino-N-(2-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}ethyl)-N-hydroxypyrrolidine-1-carboxamide397.5
1181,1-dimethylethyl-3-[({[(2-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}ethyl)(hydroxy)amino]carbonyl}amino)methyl]piperidin-525.7
1-carboxylate
1191,1-dimethylethyl-1-{[(2-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}ethyl)(hydroxy)amino]carbonyl}pyrrolidin-3-ylcarbamate497.6
1204′-ethyl-N-{(1S,2R)-2-hydroxy-1-({[2-(hydroxyamino)ethyl]amino}carbonyl)propyl]-1,1′-biphenyl-4-carboxamide386.5
121N-{(1S,2R)-2-[({2-[(aminocarbonyl)(hydroxy)amino]ethyl}amino)carbonyl]-2-hydroxypropyl}-4′-ethyl-1,1′-biphenyl-4-carboxamide429.5
122N-{(1S,2R)-1-[({2-[(aminocarbonothioyl)(hydroxy)amino]ethyl}amino)carbonyl]-2-hydroxypropyl}-4′-ethyl-1,1′-445.6
biphenyl-4-carboxamide
1234′-ethyl-N-[(1S,2R)-2-hydroxy-1-({[2-(hydroxy{[(2-hydroxyethyl)amino]carbonyl}amino)ethyl]amino}carbonyl)propyl}-1,1′-473.5
biphenyl-4-carboxamide
1244′-ethyl-N-{(1S)-6-hydroxy-1-[(1R)-1-hydroxyethyl]-2,7-dioxo-11-oxa-3,6,8-triazadodec-1-yl}-1,1′-biphenyl-4-carboxamide487.6
1254′-ethyl-N-{(1S)-6-hydroxy-1-[(1R)-1-hydroxyethyl]-11-methyl-2,7-dioxo-3,6,8,11-tetraazadodec-1-yl}-1,1′-biphenyl-4-carboxamide500.6
1264′-ethyl-N-{(1S)-6-hydroxy-1-{(1R)-1-hydroxyethyl}-2,7,12-trioxo-3,6,8,11-tetraazatridec-1-yl}-1,1′-biphenyl-4-carboxamide514.6
1274′-ethyl-N-{(1S,2R)-2-hydroxy-1-[({2-[hydroxy([[3-(2-oxopyrrolidin-1-yl)propyl]amino}carbonyl)amino]ethyl}amino)carbonyl]-554.7
propyl}-1,1′-biphenyl-4-carboxamide
128N-{(1S,2R)-1-[({2-[{[(2-cyanoethyl)amino}carbonyl}(hydroxy)amino]ethyl}amino)carbonyl]-2-hydroxypropyl}-4′-ethyl-1,1′-482.6
biphenyl-4-carboxamide
129N-{(1S,2R)-1-{({2-[[(cyclopropylamino)carbonyl](hydroxy)amino]ethyl}amino)carbonyl]-2-hydroxypropyl}-4′-ethyl-1,1′-469.6
biphenyl-4-carboxamide
130N-{2-[((2S,3R)-2-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}-3-hydroxybutanoyl)amino]ethyl}-N-hydroxypyrrolidine-483.6
1-carboxamide
131N-{2-[((2S,3R)-2-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}-3-hydroxybutanoyl)amino]ethyl}-N-hydroxymorpholine-499.6
4-carboxamide
132N-{2-[((2S,3R)-2-{[(4′-ethyl-1,1′-biphenyl-4-yl]carbonyl]amino}-3-hydroxybutanoyl)amino]ethyl}-N-hydroxy-4-methylpiperazine-512.6
1-carboxamide
1334′-ethyl-N-[(1S,2R)-2-hydroxy-1-({[2-(hydroxy{[(pyridin-3-ylmethyl)amino]carbonyl}amino)ethyl]amino}carbonyl)propyl]-1,1′-520.6
biphenyl-4-carboxamide
1344′-ethyl-N-{(1S,2R)-2-hydroxy-1-({[2-(hydroxy{[(2-pyridin-2-ylethyl)amino]carbonyl}amino)ethyl]amino}carbonyl)propyl]-1,1′-534.6
biphenyl-4-carboxamide
1353-chloro-N-{(1S,2S)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(trifluoromethyl)oxy]benzamide357.7
136N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[(3-nitrophenyl)methyl]oxy}benzamide390.4
137(4R)-2-(4-fluoro-3-prop-2-enylphenyl)-N-hydroxy-4,5-dihydro-1,3-oxazole-4-carboxamide265.3
1383-fluoro-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(methyloxy)benzamide287.3
1394-(but-3-enyloxy)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide309.3
1403-bromo-5-fluoro-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(prop-2-enyloxy)benzamide392.2
1414-fluoro-N-{(1S,2S)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-3-prop-2-ethylbenzamide297.3
142N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(prop-2-enyloxy)-3-(trifluoromethyl)benzamide363.3
143N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(methyloxy)benzamide269.3
144N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-3-(phenyloxy)benzamide331.3
145N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(methyloxy)-3-[(trifluoromethyl)oxy]benzamide353.3
146N-{(1S,2S)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(trifluoromethyl)oxy]benzamide323.2
147N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(trifluoromethyl)oxy]benzamide323.2
148N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(trifluoromethyl)benzamide307.2
1493,4-difluoro-N-[(2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide275.2
150N-{(1S,2S)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(methyloxy)benzamide269.3
151N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4′-propyl-1,1′-biphenyl-4-carboxamide357.4
152N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4′-propyl-1,1′-biphenyl-4-carboxamide357.4
153N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[trifluoro(methylidene)-lambda-6-sulfanyl]benzamide341.3
154N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide239.2
155N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-biphenyl-4-carboxamide315.3
1563-bromo-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(methyloxy)benzamide348.2
1574-fluoro-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-3-(prop-2-enyloxy)benzamide313.3
1582,3,5,6-tetrafluoro-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-prop-2-enylbenzamide351.3
1593-fluoro-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-5-(trifluoromethyl)benzamide325.2
1604-bromo-2-fluoro-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide336.1
161N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(phenyloxy)benzamide331.3
1624-(dimethylamino)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide282.3
1632-[3-fluoro-4-(methyloxy)-5-prop-2-enylphenyl]-N-hydroxy-4,5-dihydro-1,3-oxazole-4-carboxamide295.3
164N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-5-[3-(trifluoromethyl)phenyl]furan-2-carboxamide373.3
1654-{[(1E)-1,2-difluorobuta-1,3-dienyl]oxy}-N-{(1S,2R)-2-hydroxy-1-[(hydrox7yamino)carbonyl]propyl}benzamide343.3
166N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}quinoline-2-carboxamide290.3
167N-[2-(hydroxyamino)-1-(hydroxymethyl)-2-oxoethyl]-1,1′-biphenyl-4-carboxamide301.3
168N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-biphenyl-4-carboxamide315.3
169N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-2′-methyl-1,1′-biphenyl-4-carboxamide329.4
170N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(trifluoromethyl)benzamide307.2
1714-fluoro-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-3-(trifluoromethyl)benzamide325.2
172N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[(3-nitrophenyl)oxy]methyl}benzamide390.4
173N-[(1R)-2-(hydroxyamino)-1-(mercaptomethyl)-2-oxoethyl]-4-[(trifluoromethyl)oxy]benzamide325.3
174N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,3-benzodioxole-5-carboxamide283.3
175N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-6-(trifluoromethyl)pyridine-3-carboxamide308.2
176N-{3-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(trifluoromethyl)oxy]benzamide323.2
177N-{3-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-biphenyl-4-carboxamide315.3
178N-[(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[hydroxy(phenyl)methyl]benzamide345.4
179N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[({4-[(trifluoromethyl)oxy]phenyl}oxy)methyl]benzamide429.4
1804-[({4-bromo-2-[(trifluoromethyl)oxy]phenyl}oxy)methyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide508.3
181N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-3′-nitro-1,1′-biphenyl-4-carboxamide360.3
1824-bromo-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide318.1
183N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4′-(methyloxy)-1,1′-biphenyl-4-carboxamide345.4
184N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4′-[(trifluoromethyl)oxy]-1,1′-biphenyl-4-carboxamide399.3
1854′-(ethyloxy)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-biphenyl-4-carboxamide359.4
186N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{5-[(Z)-(hydroxyamino)methyl]thien-2-yl}benzamide364.4
1873′-(ethyloxy)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-biphenyl-4-carboxamide359.4
188(2R,3R)-N,3-dihydroxy-1-({4-[(trifluoromethyl)oxy]phenyl}-carbonyl)pyrrolidine-2-carboxamide335.2
189N-[2-(hydroxyamino)-1-(hydroxymethyl)-2-oxoethyl]-3-(1-methylethyl)-4-(methyloxy)benzamide297.3
190N-[2-(hydroxyamino)-1-(hydroxymethyl)-2-oxoethyl]-3-(1-methylethyl)-4-(prop-2-enyloxy)benzamide323.4
191N-[2-(hydroxyamino)-1-(hydroxymethyl)-2-oxoethyl]-4-(methyloxy)-3-propylbenzamide297.3
192N-{(1S,2R)-2-hydroxy-1-[(hydoxyamino)carbonyl]propyl}-4′-(methylthio)-1,1′-biphenyl-4-carboxamide361.4
1935-bromo-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}thiophene-2-carboxamide324.2
194N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-5-{4-[(trifluoromethyl)oxy]phenyl}thiophene-2-carboxamide405.4
195N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1-benzofuran-2-carboxamide279.3
196N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-5-phenylthiophene-2-carboxamide321.4
1974′-(dimethylamino)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-biphenyl-4-carboxamide358.4
198(2S,3R)-N,3-dihydroxy-2-[({2-[(trifluoromethyl)oxy]phenyl}acetyl)amino]butanamide337.3
1995-[4-(ethyloxy)phenyl]-N-{(1S,2R)-2-hydroxy-1-{(hydroxyamino)carbonyl]propyl}thiophene-2-carboxamide365.4
2005-[3-(ethyloxy)phenyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}thiophene-2-carboxamide365.4
201(4R)-N-hydroxy-2-[2′-[(trifluoromethyl)oxy]-1,1′-biphenyl-4-yl}-4,5-dihydro-1,3-oxazole-4-carboxamide367.3
202N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4′-(hydroxymethyl)-1,1′-biphenyl-4-carboxamide345.4
203N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{5-[(4-methylpiperazin-1-yl)methyl]thein-2-yl}benzamide433.5
204N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-(methyloxy)phenyl]carbonyl}benzamide373.4
205N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(E)-phenyldiazenyl]benzamide343.4
206(4R)-N-hydroxy-2-{4-(methyloxy)-3-[(trifluoromethyl)oxy]phenyl}-4,5-dihydro-1,3-oxazole-4-carboxamide321.2
2074′-ethyl-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-biphenyl-4-carboxamide343.4
208N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4′-(trifluoromethyl)-1,1′-biphenyl-4-carboxamide383.3
2095-(4-ethylphenyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}thiophene-2-carboxamide349.4
210N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-5-[4-(methyloxy)phenyl]thiophene-2-carboxamide351.4
211N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-5-[4-(methylthio)phenyl}thiophene-2-carboxamide367.5
212N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-5-(3-nitrophenyl)thiophene-2-carboxamide366.4
213N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-oxo-4H-chromene-2-carboxamide307.3
214N-[1-[(hydroxyamino)carbonyl]-1-(hydroxymethyl)-2-methylpropyl]-4-[(trifluoromethyl)oxy]benzamide351.3
215N-[2-hydroxy-3-(hydroxyamino)-3-oxopropyl]-1,1′-biphenyl-4-carboxamide301.3
216N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{(E)-2-phenylethenyl]benzamide341.4
217N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-9H-fluorene-2-carboxamide327.4
2184′-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]-1,1′-biphenyl-4-carboxylic acid359.3
219N-[2-(hydroxyamino)-1-(hydroxymethyl)-2-oxoethyl]-4-(prep-2-enyloxy)-3-propylbenzamide323.4
220N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-iodobenzamide365.1
2214′-hydroxy-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-biphenyl-1-carboxamide331.3
2226-bromo-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}pyridine-2-carboxamide319.1
223N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-6-phenylpyridine-2-carboxamide316.3
2244′-butyl-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-biphenyl-4-carboxamide371.4
2254′-(1,1-dimethylethyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-biphenyl-4-carboxamide371.4
226N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-5-[3-(methyloxy)phenyl]thiophene-2-carboxamide351.4
2274′-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]-1,1′-biphenyl-4-yl dihydrogen phosphate411.3
228N-ethyl-N′-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-biphenyl-4,4′-dicarboxamide386.4
229N-[(1S,2R)-1-(hydrazinecarbonyl)-1-hydroxypropyl]-4′-propyl-1,1′-biphenyl-4-carboxamide356.4
230N-((1S,2R)-2-hydroxy-1-[(methylamino)carbonyl]propyl}-4′-propyl-1,1′-biphenyl-4-carboxamide355.4
231N-[(1S,2R)-1-(hydrazinecarbonyl)-2-hydroxypropyl]-4-(methyloxy)benzamide268.3
232(2S,3R)-2-[(1,1′-biphenyl-4-ylsulfonyl)amino]-N,3-dihydroxybutanamide351.4
2334-hydroxy-N-[(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide255.2
2343′-cyano-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-biphenyl-4-carboxamide340.3
2351,1-dimethylethyl({4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}oxy)acetate369.4
236(2S,3R)-2-[(1,1′-biphenyl-4-ylsulfonyl)(methylethyl)amino]-N,3-dihydroxybutanamide365.4
237N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-3′[(Z)-(hydroxyamino)methyl]-4′-(methyloxy)-1,1′-biphenyl-4-carboxamide388.4
238N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(phenylcarbonyl)amino]benzamide358.4
239N-hydroxy-2-[3-(1-methylethyl)-4-(prop-2-enyloxy)phenyl]-4,5-dihydro-1,3-oxazole-4-carboxamide305.3
2404′-butyl-N-{(1S,2R)-2-hydroxy-1-[(methylamino)carbonyl]propyl}-1,1′-biphenyl-4-carboxamide369.5
241N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(5-methylpyridin-2-yl}benzamide330.4
2425-bromo-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}pyridine-3-carboxamide319.1
243N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-pyridin-3-ylbenzamide316.3
244N-{(1R,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-N′-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-475.5
biphenyl-4,4′-dicarboxamide
245(2S,3R)-N,3-dihydroxy-2-[({4-[(E)-2-phenylethenyl]phenyl}methyl)amino]butasnamide327.4
2464-{[(4-bromophenyl)sulfonyl]amino}-N-{(1S,2)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide473.3
2471,1-dimethylethy-4-({4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}amino)-4-oxobutylcarbamate439.5
2484-[(4-aminobutanoyl)amino]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide339.4
2491,1-dimethylethyl {4′-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)methyl]-1,1′-biphenyl-4-yl}methylcarbamate430.5
250N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-pyrimidin-5-ylbenzamide317.3
2511,1-dimethylethyl 5-{4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}pyridine-3-carboxylate416.4
2525-{4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}pyridine-3-carboxylic acid360.3
253(4S)-N-hydroxy-2-{4-(methyloxy)-3-[(trifluoromethyl)oxy]phenyl}-4,5-dihydro-1,3-oxazole-4-carboxamide321.2
254(2S,3R)-2-({[4′-(aminomethyl)-1,1′-biphenyl-4-yl]methyl}amino)-N,3-dihydroxybutanamide330.4
255(3S)-1-hydroxy-3-[(1R)-1-hydroxyethyl]-4-({4[(E)-2-phenylethenyl]phenyl}methyl)piperazine-2,6-dione367.4
256(2S,3R)-N,3-dihydroxy-2-({[4-(phenylethynyl)phenyl]methyl}amino)butanamide325.4
257N-(3-aminopropyl)-N′-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzene-1,4-dicarboxamide339.4
258N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(propanoylamino)benzamide310.3
2591,1-dimethylethyl-3-[({4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)-439.5
carbonyl]phenyl}carbonyl)amino]propylcarbamate
260N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4′-(phenyloxy)-1,1′-biphenyl-4-carboxamide407.4
261N-[(1S,2R)-1-({[cyano(phenyl)methyl]amino}carbonyl)-2-hydroxypropyl]-4′-hydroxy-1,1′-biphenyl-4-carboxamide430.5
2624′-{[2-(hydroxyamino)-2-oxoethyl]oxy}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-biphenyl-4-carboxamide404.4
2634′-({[(1S,2R)-1-({(cyanomethyl)amino]carbonyl}-2-(propanoyloxy)propyl]amino}carbonyl)-1,1′-biphenyl-4-yl propanoate466.5
2644′-({[(1S,2R)-1-{[(cyanomethyl)(propanoyl)amino]carbonyl}-2-(propanoyloxy)propyl]amino}carbonyl)-1,1′-biphenyl-4-yl propanoate522.6
265N-{(1S,2R)-1-{[(cyanomethyl)amino]carbonyl}-2-hydroxypropyl)-4′-hydroxy-1,1′-biphenyl-4-carboxamide354.4
266(2S,3S)-2-[(1,1′-biphenyl-4-ylmethyl)amino]-N,3-dihydroxybutanamide301.4
267N-{2-hydroxy-1-[(hydroxyamino)carbonyl]-2-phenylethyl}-1,1′-biphenyl-4-carboxamide377.4
268(2S,3R)-2-[(diphenylacetyl)amino]-N,3-dihydroxybutanamide329.4
269N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-6-[(phenylmethyl)thio]pyridine-3-carboxamide362.4
270N,3-dihydroxy-2-({[4-(phenyloxy)phenyl]methyl}amino)butanamide317.4
271N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-2′-[(trifluoromethyl)oxy]-1,1′-biphenyl-4-carboxamide399.3
272(2R,3S)-2-[(1,1′-biphenyl-4-ylmethyl)amino]-N,3-dihydroxybutanamide301.4
2734-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]benzoic acid283.3
2741,1-dimethylethyl 4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino}carbonyl]benzoate339.4
275(4R)-4-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}-5-(hydroxyamino)-5-oxopentanoic acid371.4
2764′-ethyl-N-[(1R)-2-(hydroxyamino)-1-(hydroxymethyl)-2-oxoethyl]-1,1′-biphenyl-4-carboxamide329.4
2774′-ethyl-N[(1S)-2-(hydroxyamino)-1-(hydroxymethyl)-2-oxoethyl]-1,1′-biphenyl-4-carboxamide329.4
278(2S)-1-[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]-N,4-dihydroxypyrrolidine-2-carboxamide355.4
2794′-ethyl-N-{(1S)-1-[(hydroxyamino)carbonyl]but-3-ynyl}-1,1′-biphenyl-4-carboxamide337.4
280N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4′-ethyl-1,1′-biphenyl-4-carboxamide328.4
281N-{(1S)-1-[(hydroxyamino)carbonyl]-2-methylpropyl}-1,1′-biphenyl-4-carboxamide313.4
282N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-N-methyl-1,1′-biphenyl-4-carboxamide329.4
2834-ethynyl-N-[(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide263.3
2844-(1,3-benzodioxol-5-yl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide359.3
285N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4′-propyl-1,1′-biphenyl-4-carboxamide357.4
2862-({[3′-(ethyloxy)-1,1′-biphenyl-4-yl]methyl}amino)-N,3-dihydroxybutanamide345.4
287N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-3′,4′-bis(methyloxy)-1,1′-biphenyl-4-carboxamide375.4
2883′-formyl-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4′-(methyloxy)-1,1′-biphenyl-4-carboxamide373.4
289N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(4-{4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)-523.5
carbonyl]propyl}amino)carbonyl]phenyl}-buta-1,3-diynyl)benzamide
290(2S,3R)-2-({[4′-(ethyloxy)-1,1′-biphenyl-4-yl]methyl}amino)-N,3-dihydroxybutanamide345.4
2913′-chloro-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4′-(methyloxy)-1,1′-biphenyl-4-carboxamide379.8
292(1R,2R)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-2-phenylcyclopropanecarboxamide279.3
293N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(1H-pyrrol-1-yl)benzamide304.3
294N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-propylbenzamide281.3
295N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-pentylbenzamide309.4
296N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-octylbenzamide351.5
297(2E)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-3-(4-methylphenyl)prop-2-enamide279.3
298(2E)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-3-[4-(trifluoromethyl)phenyl]prop-2-enamide333.3
299(2E)-3-(1,1′-biphenyl-4-yl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}prop-2-enamide341.4
300(2S,3R)-2-[(1,1′-biphenyl-4-ylacetyl)amino]-N,3-dihydroxybutanamide329.4
301(2S,3R)-2-{[(2S)-2-amino-3-{1,1′-biphenyl-4-yl)propanoyl]amino}-N,3-dihydroxybutanamide358.4
302(2S,3R)-2-{[(2R)-2-amino-3-(1,1′-biphenyl-4-yl)propanoyl]amino}-N,3-dihydroxybutanamide358.4
303(3S)-3-amino-N-{(1S,2)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-5-phenylpentanamide310.4
304N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(phenylamino)methyl]benzamide344.4
305N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[(phenylmethyl)amino]methyl}benzamide358.4
3064′-ethyl-N-{(1S,2R)-2-hydroxy-1-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]propyl}-1,1′-444.5
biphenyl-4-carboxamide
307(2S,3R)-2-[(1,1′-biphenyl-4-ylacetyl)amino]-3-hydroxy-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}butanamide430.5
3084-(4-chlorophenyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}cyclohexane carboxamide355.8
309N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(1H-pyrazol-1-yl}benzamide305.3
310N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-morpholin-4-ylbenzamide324.3
311N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(1,2,3-thiadiazol-4-yl)benzamide323.3
312N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-methylpiperazin-1-yl)methyl]benzamide351.4
313N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(1H-imidazol-1-ylmethyl)benzamide319.3
314(2S,4S)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-phenylpyrrolidine-2-carboxamide308.3
3154′-bromo-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-biphenyl-4-carboxamide394.2
3164′-bromo-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-biphenyl-4-carboxamide394.2
3174′-bromo-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-biphenyl-4-carboxamide394.2
318(2R)-2-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}-N-1-hydroxypentanediamide370.4
319(2S,3S)-1-[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]-3-hydroxypyrrolidine-2-carboxylic acid340.4
320(2S,3S)-N-[(1,1-dimethylethyl)oxy]-1-[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]-3-hydroxypyrrolidine-2-carboxamide411.5
321(2S,3S)-1-[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]-N,3-dihydroxypyrrolidine-2-carboxamide355.4
322N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-nitrophenyl)ethynyl]benzamide384.4
323N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-(1H-pyrrol-1-yl)phenyl]ethynyl}benzamide404.4
324N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4′-nitro-1,1′-biphenyl-4-carboxamide360.3
325(2S,3R)-N,3-dihydroxy-2-({[4′-(methyloxy)-3′-propyl-1,1′-biphenyl-4-yl]methyl}amino)butanamide373.5
3264′-cyano-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-biphenyl-4-carboxamide340.3
327(2S,3R)-2-({[4′-(ethyloxy)-4(methyloxy)-1,1′-biphenyl-3-yl]methyl}amino)-N,3-dihydroxybutanamide375.4
3282′,5′-difluoro-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-biphenyl-4-carboxamide351.3
329N-[(1S)-1-[(acetylamino)methyl]-2-(hydroxyamino)-2-oxoethyl]-4′-ethyl-1,1′-biphenyl-4-carboxamide370.4
330N-{(1S)-4-amino-1-[(hydroxyamino)carbonyl]butyl}-4′-ethyl-1,1′-biphenyl-4-carboxamide356.4
3314′-ethyl-N-[(1S)-2-(hydroxyamino)-1-(1H-imidazol-5-ylmethyl)-2-oxoethyl]-1,1′-biphenyl-4-carboxamide379.4
332(2S,3R)-2-{[1-(1,1′-biphenyl-4-yl)ethyl]amino}-N,3-dihydroxybutanamide315.4
333(2S,3R)-2-{[1-(1,1′-biphenyl-4-yl)propyl]amino}-N,3-dihydroxybutanamide329.4
334(2S,3R)-2-{[1-(4′-bromo-1,1′-biphenyl-4-yl)ethyl]amino}-N,3-dihydroxybutanamide394.3
335(2S,3R)-N,3-dihydroxy-2-{[1-(4′-methyl-1,1′-biphenyl-4-yl)ethyl]amino}butanamide329.4
336N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-1,1′-biphenyl-4-carboxamide300.3
337N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(1H-pyrrol-1-yl)benzamide289.3
338N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-chlorophenyl)cyclohexanecarboxamide340.8
339N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-pentylbenzamide294.4
340(2E)-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-3-(1,1′-biphenyl-4-yl)prop-2-enamide326.4
341(2S)-3-amino-2-{[(4′-ethyl-1,1′-biphenyl-4-yl)methyl]amino}-N-hydroxypropanamide314.4
342(2S)-3-amino-2-[(1,1′-biphenyl-4-ylmethyl)amino]-N-hydroxypropanamide286.3
343(2S)-3-amino-2-{(1-(4′-bromo-1,1′-biphenyl-4-yl)ethyl]amino}-N-hydroxypropanamide379.3
344(2S)-3-amino-N-hydroxy-2-{[1-(4′-methyl-1,1′-biphenyl-4-yl)ethyl]amino}propanamide314.4
3454′-ethyl-N-[(1S)-2-({[(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)-1-(hydroxymethyl)-2-oxoethyl]-1,1′-430.5
biphenyl-4-carboxamide
3464′-ethyl-N-{(1S)-2-({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)-1-[(4-hydroxyphenyl)methyl]-2-oxoethyl}-1,1′-506.6
biphenyl-4-carboxamide
347(2S)-2-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}-N-1-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}pentanediamide471.5
348(4S)-4-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}-5-([(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)-5-472.5
oxopentanoic acid
349(3S)-3-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}-4-({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)-4-458.5
oxobutanoic acid
350(3S)-2-(1,1′-biphenyl-4-ylacetyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,2,3,4-tetrahydroisoquinolinine-2-488.6
carboxamide
3514′-ethyl-N-[(1S)-2-({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)-1-methyl-2-oxoethyl]-1,1′-biphenyl-4-carboxamide414.5
352(2S,3R)-2-({(2S)-3-amino-2-[(1,1′-biphenyl-4-ylacetyl)amino]propanoyl}amino)-N,3-dihydroxybutanamide415.5
353(2S)-2-[(1,1′-biphenyl-4-ylacetyl)amino]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-pent-4-ynamide424.5
354(2S,3R)-2-{[(2S)-2-amino-2-(1,1′-biphenyl-4-yl)ethanoyl]amino}-N,3-dihydroxybutanamide344.4
355(2S,3R)-2-{[(2R)-2-amino-2-(1,1′-biphenyl-4-yl)ethanoyl]amino}-N,3-dihydroxybutanamide344.4
356N-(3-aminopropyl)-4′-ethyl-N-[2-(hydroxyamino)-2-oxoethyl]-1,1′-biphenyl-4-carboxamide356.4
357N-(2-cyanoethyl)-4′-ethyl-N-[2-(hydroxyamino)-2-oxoethyl]-1,1′-biphenyl-4-carboxamide352.4
358N-[2-(acetylamino)ethyl]-4′-ethyl-N-[2-(hydroxyamino)-2-oxoethyl]-1,1′-biphenyl-4-carboxamide384.4
3594′-ethyl-N-[2-(hydroxyamino)-2-oxoethyl]-N-prop-2-ynyl-1,1′-biphenyl-4-carboxamide337.4
3604-cyano-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide264.3
3614-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-cyanobenzamide249.2
3621,1-dimethylethyl (2S)-2-{[(4-ethynylphenyl)carbonyl]amino}-3-(hydroxyamino)-3-oxopropylcarbamate348.4
3631,1-dimethylethyl (2S)-3-(hydroxyamino)-3-oxo-2-[({4-[(E)-2-phenylethenyl]phenyl}methyl)amino]propylcarbamate412.5
364N-{(1R,2S)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-3′-(trifluoromethyl)-1,1′-biphenyl-4-carboxamide383.3
365(2S,3R)-2-[(1,1′-biphenyl-4-ylmethyl)amino]-3-hydroxybutanoic acid286.3
366N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(phenylethynyl)benzamide324.4
3671,1-dimethylethyl (2S)-3-(hydroxyamino)-3-oxo-2-({[4-(phenylethynyl)phenyl]carbonyl}amino)propylcarbamate424.5
368N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-ethynylbenzamide248.3
369N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-ethynylbenzamide248.3
370N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-(methyloxy)phenyl]ethynyl}benzamide369.4
371(2S)-3-amino-N-hydroxy-2-[({4-[(E)-2-phenylethynyl]phenyl}methyl)amino]propanamide312.4
3721,1-dimethylethyl-2-{4′-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]-1,1′-biphenyl-4-yl}ethylcarbamate458.5
373(2S,3R)-N,3-dihydroxy-2-[({4′-[(2-pyrrolidin-1-ylethyl)oxy]-1,1′-biphenyl-4-yl}methyl)amino]butanamide414.5
3741,1-dimethylethyl (1S)-4-({[(1,1-dimethylethyl)oxy]carbonyl}amino)-1-({[4-({4-[({(1S,2R)-2-hydroxy-1-668.8
[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}ethynyl)phenyl]amino}carbonyl)butylcarbamate
3754-(4-chlorophenyl)-N-[(1S)-2-({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)-1-methyl-2-426.9
oxoethyl]cyclobutanecarboxamide
3764′-ethyl-N-[2-({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)-2-oxoethyl]-1,1′-biphenyl-4-carboxamide400.4
3774′-ethyl-N-[3-({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)-3-oxopropyl]-1,1′-biphenyl-4-carboxamide414.5
3784′-ethyl-N-[4-({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)-4-oxobutyl]-1,1′-biphenyl-1-carboxamide428.5
379N-{(1S)-2-{[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]amino}-1-methyl-2-oxoethyl)-4′-ethyl-1,1′-biphenyl-4-carboxamide399.5
380N-(2-{[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]amino}-2-oxoethyl-4′-ethyl-1,1′-biphenyl-4-carboxamide385.4
381N-(3-{[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]amino}-3-oxopropyl)-4′-ethyl-1,1′-biphenyl-4-carboxamide399.5
382N-(4-{[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]amino}-4-oxobutyl)-4′-ethyl-1,1′-biphenyl-4-carboxamide413.5
3834′-ethyl-N-[1-{(hydroxyamino)carbonyl]-2-(methyloxy)propyl]-1,1′-biphenyl-4-carboxamide357.4
3844′-ethyl-N-[(1S,2R)-1-{(hydroxyamino)carbonyl]-2-(methyloxy)propyl}-1,1′-biphenyl-4-carboxamide357.4
385N-[1-[(dimethylamino)methyl]-2-(hydroxyamino)-2-oxoethyl]-4′-ethyl-1,1′-biphenyl-4-carboxamide356.4
386N-{(1S)-3-cyano-1-[(hydroxyamino)carbonyl]propyl}-4′-ethyl-1,1′-biphenyl-4-carboxamide352.4
387N-{(1S)-5-amino-1-[(hydroxyamino)carbonyl]pentyl}-4′-ethyl-1,1′-biphenyl-4-carboxamide370.5
388N-{(1S)-3-amino-1-[(hydroxyamino)carbonyl]propyl}-4′-ethyl-1,1′-biphenyl-4-carboxamide342.4
3894′-ethyl-N-hydroxy-1,1′-biphenyl-4-carboxamide242.3
3904′-ethyl-N-{2-hydroxy-1-[(hydroxyamino)carbonyl]-2-methylpropyl}-1,1′-biphenyl-4-carboxamide357.4
391N-[(2S)-2-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}-3-(hydroxyamino)-3-oxopropyl]morpholine-4-carboxamide441.5
392N-[(1S)-1-{[(aminocarbonyl)amino]methyl}-2-(hydroxyamino)-2-oxoethyl]-4′-ethyl-1,1′-biphenyl-4-carboxamide371.4
393N-[(1S)-1-({[amino(imino)methyl]amino}methyl)-2-(hydroxyamino)-2-oxoethyl]-4′-ethyl-1,1′-biphenyl-4-carboxamide370.4
394N-[(2S)-2-amino-3-(hydroxyamino)-3-oxopropyl]-4′-ethyl-1,1′-biphenyl-4-carboxamide328.4
3951-[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]-N-hydroxypiperazine-2-carboxamide354.4
396N-[(2S)-2-amino-3-(hydroxyamino)-3-oxopropyl]-4-(phenylethynyl)benzamide324.4
397N-hydroxy-1-{[4-(phenylethynyl)phenyl]carbonyl}piperazine-2-carboxamide350.4
398N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{(4-pentylphenyl)ethynyl]benzamide409.5
399N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[3-(methyloxy)phenyl]ethynyl}benzamide369.4
4004-[(3-fluoro-4-methylphenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide371.4
4014-[(2,4-difluorophenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide375.3
402methyl (2E)-3-(ethylamino)-2-({[4-(phenylethynyl)phenyl]carbonyl}amino)but-2-enoate363.4
4031,1-dimethylethyl-4-{[(2S)-3-(hydroxyamino)-3-oxo-2-({[4-phenylethynyl)phenyl]carbonyl}amino)propyl]amino}-509.6
4-oxobutylcarbamate
404N-(1-(N-hydroxycarbamoyl)-2-hydroxy-3-methylbutyl)[4-(4-ethylphenyl)phenyl]carboxamide371.4
405N-((1R,2R)-1-{[(aminocarbonyl)(hydroxy)amino]methyl}-2-hydroxypropyl}-4′-ethyl-1,1′-biphenyl-4-carboxamide372.4
4064′-ethyl-N-((1R,2R)-1-{[formyl(hydroxy)amino]methyl}-2-hydroxypropyl)-1,1′-biphenyl-4-carboxamide357.4
407N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-(trifluoromethyl)phenyl]ethynyl}benzamide407.4
4081,1-dimethylethyl-2-{[(2S)-3-(hydroxyamino)-3-oxo-2-({[4-(phenylethynyl)phenyl]carbonyl}amino)propyl]amino}-2-481.5
oxoethylcarbamate
409N-[(1S)-1-{[(aminoacetyl)amino]methyl}-2-(hydroxyamino)-2-oxoethyl]-4-(phenylethynyl)benzamide381.4
410N-[(1S)-1-{[(4-aminobutanoyl)amino]methyl}-2-(hydroxyamino)-2-oxoethyl]-4-(phenylethynyl)benzamide409.5
411N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-pent-1-ynylbenzamide305.3
412N-{(1S,2R)-2-{(1,1-dimethylethyl)oxy]-1-[(hydroxyamino)carbonyl]propyl}-4′-propyl-1,1′-biphenyl-4-carboxamide413.5
4131,1-dimethylethyl (1S)-4-({[(1,1-dimethylethyl)oxy]carbonyl}amino)-1-{[(2-(4′-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)-672.8
carbonyl]propyl}amino)carbonyl]-1,1′-biphenyl-4-yl}ethyl)amino]carbonyl}butylcarbamate
4144′-(2-aminomethyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-biphenyl-4-carboxamide358.4
4154′-{2-{[(2S)-2,5-diaminopentanoyl]amino}ethyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-472.6
biphenyl-4-carboxamide
4164-(cyclohex-1-en-1-ylethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide343.4
4174-(3,3-dimethylbut-1-ynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide319.4
418N-{(1S)-1-{[(aminoacetyl)amino]methyl}-2-[(2-{[(2S)-3-(hydroxyamino)-3-oxo-2-({[4-(phenylethynyl)phenyl]-726.8
carbonyl}amino)propyl]amino}-2-oxoethyl)amino]-2-oxoethyl}-4-(phenylethynyl)benzamide
4194-[(4-{[(2S)-2,5-diaminopentanoyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide468.5
4204′-(2-aminoethyl)-N-{(1E)-1-[(hydroxyamino)carbonyl]prop-1-enyl}-1,1′-biphenyl-4-carboxamide340.4
4212′,4′-digluoro-N-{(1S,2)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′-biphenyl-4-carboxamide351.3
422N-[(1E)-1-formylprop-1-enyl]-4′-propyl-1,1′-biphenyl-4-carboxamide308.4
423N-hydroxy-4-(pyridin-3-ylethynyl)benzamide239.2
4244-(3-hydroxy-3,5-dimethylhex-1-ynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide363.4
4254′-ethyl-N-{(1R,2R)-2-hydroxy-1-[(hydroxyamino)methyl]propyl}-1,1′-biphenyl-4-carboxamide329.4
4264′-ethyl-N-{(1R,2R)-1-[(hydroxyamino)methyl]-2-[(phenylmethyl)oxy]propyl]-1,1′-biphenyl-4-carboxamide419.5
4274′-ethyl-N-[(5R,6R)-3-hydroxy-6-methyl-2-oxo-1,3-oxazinan-5-yl]-1,1′-biphenyl-4-carboxamide355.4
428N-{(1R,2R)-1-{[({[2-(dimethylamino)ethyl]amino}carbonyl)(hydroxy)amino]methyl}-2-hydroxypropyl)-4′-443.6
ethyl-1,1′-biphenyl-4-carboxamide
429N-((1R,2R)-1-{[{[(2-cyanoethyl)amino]carbonyl}(hydroxy)amino]methyl}-2-hydroxypropyl}-4′-ethyl-1,1′-biphenyl-4-carboxamide425.5
4304′-ethyl-N-((1R,2R)-2-hydroxy-1-{[hydroxy({[3-(2-oxopyrrolidin-1-yl)propyl]amino}carbonyl)amino]methyl}propyl)-1,1′-497.6
biphenyl-4-carboxamide
431(1R,2R)-3-[({[2-(dimethylamino)ethyl]amino}carbonyl)(hydroxy)amino]-2-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}-1-557.7
methylpropyl-2-(dimethylamino)ethylcarbamate
432(1R,2R)-3-[{[(2-cyanoethyl)amino]carbonyl}(hydroxy)amino]-2-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}-1-521.6
methylpropyl-2-cyanoethylcarbamate
433N-{(1E)-1-[(E)-(hydroxyamino)methyl]prop-1-enyl}-4′-propyl-1,1′-biphenyl-4-carboxamide323.4
434N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(pyridin-3-ylethynyl)benzamide340.3
435N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[3-(methylamino)prop-1-ynyl]benzamide306.3
436N-[(1S)-1-[(dimethylamino)methyl]-2-(hydroxyamino)-2-oxoethyl]-4′-ethyl-1,1′-biphenyl-4-carboxamide356.4
437N-[1-(N-hydroxycarbamoylmethyl)(1R,2R)-2-hydroxypropyl][4-(4-ethylphenyl)phenyl]carboxamide357.4
438N-[(1S)-1-[(diethylamino)methyl]-2-(hydroxyamino)-2-oxoethyl]-4′-ethyl-1,1′-biphenyl-4-carboxamide384.5
4394-[(3-aminophenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide354.4
4404-[3-(dimethylamino)prop-1-ynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide320.4
4414-[3-(dimethylamino)prop-1-ynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide320.4
4424-({4-[(aminoacetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxamino)carbonyl]propyl}benzamide411.4
4433′-fluoro-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4′-methyl-1,1′-biphenyl-4-carboxamide347.4
444N-[(1S)-1-formyl-2-methylpropyl]-1,1′-biphenyl-4-carboxamide282.4
445N-{(1S)-1-[(E)-(hydroxyamino)methyl]-2-methylpropyl}-1,1′-biphenyl-4-carboxamide297.4
446N-{(1E)-1-{(E)-[(aminocarbonyl)hydrazono]methyl}prop-1-enyl]-4′-propyl-1,1′-biphenyl-4-carboxamide365.4
4474-[(4-aminophenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide354.4
4484-{[3-(aminomethyl)phenyl]ethynyl}-N-[(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide368.4
449N-(2-aminoethyl)-3-({4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}ethynyl)benzamide425.5
450N-((1S)-1-{(E)-[(aminocarbonyl)hydrazono]methyl}-2-methylpropyl)-1,1′-biphenyl-4-carboxamide339.4
451N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[3-(propanoylamino)phenyl]ethynyl}benzamide410.4
452N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[3-(morpholin-4-ylmethyl)phenyl]ethynyl}benzamide438.5
4534-[(3-{[(2-aminoethyl)amino]methyl}phenyl)ethynyl]-N-[(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide411.5
454N-[(1R)-2-(hydroxyamino)-1-(hydroxymethyl)-2-oxoethyl]-4′-propyl-1,1′-biphenyl-4-carboxamide343.4
455N-[1-(hydroxycarbamoylmethyl)(1R,2R)-2-hydroxypropyl][4-(2-phenylethynyl)phenyl]carboxamide353.4
4564′-ethyl-N-{(1R,2R)-1-[(hydroxyamino)carbonyl]-2-(methyloxy)propyl]-1,1′-biphenyl-4-carboxamide357.4
4574′-ethyl-N-[(1S)-1-[(ethylamino)methyl]-2-(hydroxyamino)-2-oxoethyl]-1,1′-biphenyl-4-carboxamide356.4
4584′-ethyl-N-[(1S)-2-(hydroxyamino)-2-oxo-1-({[(2S)-pyrrolidin-2-ylmethyl]amino}methyl)ethyl]-1,1′-biphenyl-4-carboxamide411.5
459N-[(1S)-1-[(ethylamino)methyl]-2-(hydroxyamino)-2-oxoethyl]-4-(phenylethynyl)benzamide352.4
460N-[(1S)-2-(hydroxyamino)-2-oxo-1-({[(2S)-pyrrolidin-2-ylmethyl]amino}methyl)ethyl]-4-(phenylethynyl)benzamide407.5
4614′-ethyl-N-((1S)-2-(hydroxyamino)-1-{[(1-methylethyl)amino]methyl}-2-oxoethyl)-1,1′-biphenyl-4-carboxamide370.5
4624′-ethyl-N-((1S)-2-(hydroxyamino)-1-({[2-(methylamino)ethyl]amino}methyl)-2-oxoethyl]-1,1′-biphenyl-4-carboxamide385.5
4634′-ethyl-N-((1S)-2-(hydroxyamino)-1-{[(1-methylpiperidin-4-yl)amino]methyl}-2-oxoethyl)-1,1′-biphenyl-4-carboxamide425.5
464N-{(1S)-2-(hydroxyamino)-1-{[(1-methylethyl)amino]methyl}-2-oxoethyl}-4-(phenylethynyl)benzamide366.4
465N-[(1S)-2-(hydroxyamino)-2-(hydroxyamino)-1({[2-(methylamino)ethyl]imino}methyl)-2-oxoethyl]-4-(phenylethynyl)benzamide381.4
466N-{(1S)-2-(hydroxyamino)-1-{[(1-methylpiperidin-4-yl)amino]methyl}-2-oxoethyl)-4-(phenylethynyl)benzamide421.5
467N-[(1S)-1-{[(2-aminoethyl)amino]methyl}-2-(hydroxyamino)-2-oxoethyl]-4-(phenylethynyl)benzamide367.4
468N-[(1S)-1-{[bis(2-aminoethyl)amino]methyl}-2-(hydroxyamino)-2-oxoethyl]-4-(phenylethynyl)benzamide410.5
469N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[(morpholin-4-ylacetyl)amino]phenyl}ethynyl)benzamide481.5
470N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-(propanoylamino)phenyl]ethynyl}benzamide410.4
471N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[(trifluoromethyl)oxy]phenyl}ethynyl)benzamide423.4
4721,1-dimethylethyl (2S)-3-(hydroxyamino)-3-oxo-2-{[(4-{[3-(propanoylamino)phenyl]ethynyl}phenyl)carbonyl]amino}propylcarbamate495.5
4731,1-dimethylethyl (2S)-3-(hydroxyamino)-3-oxo-2-{[(4-pent-1-ynylphenyl)carbonyl]amino}propylcarbamate390.4
474N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[3-(propanoylamino)phenyl]ethynyl}benzamide395.4
475N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-pent-1-ynylbenzamide290.3
4764-(phenyloxy)benzaldehyde thiosemicarbazone272.3
4774-(phenyloxy)benzaldehyde semicarbazone256.3
4784-{[3-(trifluoromethyl)phenyl]oxy}benzaldehyde thiosemicarbazone340.3
4794-[(3,4-difluorophenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide375.3
4804-[(2,4-dioxo-1,2,3,4-tetrahydropyrimidin-5-yl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide373.3
481N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-phenylbuta-1,3-diynyl)benzamide348.4
482N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4′-propyl-1,1′-biphenyl-4-carboxamide342.4
483N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-1,1′:4′,1″-terphenyl-4-carboxamide376.4
484N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-1,1′:4′,1″-terphenyl-4-carboxamide391.4
4851,1-dimethylethyl (2S)-2-[{(4-[(4-{[({[(1,1-dimethylethyl)oxy]carbonyl}amino)acetyl]amino}phenyl)ethynyl]phenyl}-596.6
carbonyl)amino]-3-(hydroxyamino)-3-oxopropylcarbamate
486N-[(1S,2R)-1-(hydrazinocarbonyl)-2-hydroxypropyl]-4-(phenylethynyl)benzamide338.4
4872-[(2S,3R)-3-hydroxy-2-({[4-(phenylethynyl)phenyl]carbonyl}amino)butanoyl]hydrazinecarboxamide381.4
488N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(2-methylphenyl)ethynyl]benzamide353.4
489N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(3-hydroxyphenyl)ethynyl]benzamide355.4
4904-({3-[(aminoacetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide411.4
4914-{[4-({[(cyanomethyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide450.5
4924′-ethyl-N-{(1S)-2-(hydroxyamino)-2-oxo-1-[(tetrahydro-2H-pyran-4-ylamino)methyl]ethyl}-1,1′-biphenyl-4-carboxamide412.5
493N-{(1S)-2-(hydroxyamino)-2-oxo-1-[(tetrahydro-2H-pyran-4-ylamino)methyl]ethyl}-4-(phenylethynyl)benzamide408.5
4944-[(4-chlorophenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide373.8
495N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-methylphenyl)ethynyl]benzamide353.4
4964-[(2-fluorophenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide357.4
4974-[(3-fluorophenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide357.4
4984-[(4-fluorophenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide357.4
4994-[(4-{[(cyclopropylamino)acetyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide451.5
5004-({4-[({[2-(dimethylamino)ethyl]amino}acetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-482.6
carbonyl[propyl}benzamide
5014-({4-[({[2-(acetylamino)ethyl]amino}acetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-496.5
carbonyl]propyl}benzamide
502N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[({[3-(2-oxopyrrolidin-1-yl)propyl]amine}acetyl)-536.6
amino]phenyl}ethynyl)benzamide
503N-[(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(pyridin-3-ylmethyl)amino]acetyl}amino)-502.5
phenyl]ethynyl}benzamide
504N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(2-pyridin-2-ylethyl)amino]acetyl}amino)-516.6
phenyl]ethynyl}benzamide
505N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[{4-{[(4-methylpiperazin-1-yl)acetyl]amino}phenyl)ethynyl]benzamide494.6
5064-({4-[(3,4-bipiperidin-1′-ylacetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide562.7
5071-(2-{[4-({4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}ethynyl)phenyl]amino}-2-522.6
oxoethyl)piperidine-4-carboxamide
508N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(piperidin-3-ylamino)acetyl]amino}phenyl)ethynyl]benzamide494.6
509N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(piperidin-4-ylamino)acetyl]amino}phenyl)ethynyl]benzamide494.6
510N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(piperidin-2-ylmethyl)amino]acetyl}amino)phenyl]-508.6
ethynyl}benzamide
511N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(piperidin-3-ylmethyl)amino]acetyl}amino)phenyl]-508.6
ethynyl}benzamide
5124-[(4-{[(3-aminopyrrolidin-1-yl)acetyl]amino}phenyl)ethynyl}-N-[(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide480.5
5134-({4-[(azepin-1-ylacetyl)amino]phenyl]ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide493.6
514N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(4-morpholin-4-572.6
ylphenyl)amino]acetyl}amino)phenyl]ethynyl}benzamide
515N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(2-hydroxyethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide440.5
516N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(cyclopropylamino)acetyl]amino}phenyl)ethynyl]benzamide436.5
517N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-([4-[({[3-(2-oxopyrrolidin-1-yl)propyl]amino}acetyl)amino]-521.6
phenyl}ethynyl)benzamide
518N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(4-methylpiperazin-1-yl)acetyl]amino}phenyl)ethynyl]benzamide479.6
519N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(pyridin-3-ylmethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide487.5
520N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(piperidin-1-ylacetyl)amino]phenyl}ethynyl)benzamide464.5
5214-{[4-({[(2-hydroxyethyl]amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide455.5
522N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[({[2-(methyloxy)ethyl]amino}acetyl)amino]phenyl}-469.5
ethynyl)benzamide
523N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[({methyl[2-(methyloxy)ethyl]amino}acetyl)amino]-483.5
phenyl}ethynyl)benzamide
5244-{[4-({[[2-(dimethylamino)ethyl](methyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-496.6
[(hydroxyamino)carbonyl]propyl}benzamide
5254-{[4-({[(3R)-3-(dimethylamino)pyrrolidin-1-yl]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-508.6
[(hydroxyamino)carbonyl]propyl}benzamide
5264-{[4-({[(3S)-3-(dimethylamino)pyrrolidin-1-yl]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-508.6
[(hydroxyamino)carbonyl]propyl}benzamide
5274-{[4-({[(3R)-3-(acetylamino)pyrrolidin-1-yl]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-522.6
[(hydroxyamino)carbonyl]propyl}benzamide
5284-{[4-({[(3R)-3-(acetylamino)pyrrolidin-1-yl]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-522.6
[(hydroxyamino)carbonyl]propyl}benzamide
5294-{[4-({[(3R)-2-azabicyclo[2.2.2]oct-3-ylamino]acetyl}amino}phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-520.6
[(hydroxyamino)carbonyl]propyl}benzamide
5304-{[4-({[(3S)-1-azabicyclo[2.2.2]oct-3-ylamino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-520.6
[(hydroxyamino)carbonyl]propyl}benzamide
531N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[({[(2R)-pyrrolidin-2-ylmethyl]amino}acetyl)amino]-494.6
phenyl}ethynyl)benzamide
532N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[({[(2S)-pyrrolidin-2-ylmethyl]amino}acetyl)amino]-494.6
phenyl}ethynyl)benzamide
5334-{[4-({[(3-aminocyclohexyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]-508.6
propyl}benzamide
534N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(3-hydroxypiperidin-1-yl)acetyl]amino}phenyl)-495.5
ethynyl]benzamide
535N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(3-morpholin-4-ylpropyl)amino]acetyl}amino)phenyl]-538.6
ethynyl}benzamide
536N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(2-methylpropyl)amino]acetyl}amino)phenyl]ethynyl}benzamide467.5
5374-[(4-{[(ethylamino)acetyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide439.5
538N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[(piperidin-1-ylacetyl)amino]phenyl}ethynyl]benzamide479.5
539N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(3-hydroxypropyl)amino]acetyl}amino)phenyl]ethynyl}benzamide469.5
540N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[({[3-(methyloxy)propyl]amino}acetyl)amino]-483.5
phenyl}ethynyl)benzamide
5414-{[4-({[(2-cyanoethyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide464.5
542N-{(1S,2R)-2-hydroxy-1-[(hydropxyamino)carbonyl]propyl}-4-{[4-({[(2-pyrrolidin-1-ylethyl)amino]-508.6
acetyl}amino)phenyl]ethynyl}benzamide
543N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(2-methyl-1H-imidazol-1-yl)acetyl]amino}-476.5
phenyl)ethynyl]benzamide
544N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(methylamino)acetyl]amino}phenyl)ethynyl]benzamide410.4
545N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-({[(2-methylpropyl)amino]acetyl}amino)phenyl]ethynyl}benzamide452.5
546N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-[([(2-(methyloxy)ethyl]amino}acetyl)amino]phenyl}ethynyl)benzamide454.5
547N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({methyl-2-(methyloxy)ethyl]amino}acetyl)amino}-468.5
phenyl}ethynyl}benzamide
548N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(3-hydroxypropyl)amino]acetyl}amino)phenyl]ethynyl}benzamide454.5
549N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[3-(methyloxy)propyl]amino}acetyl)amino]-468.5
phenyl}ethynyl)benzamide
550N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[2-(dimethylamino)ethyl]amino}acetyl)amino]-467.5
phenyl}ethynyl)benzamide
551N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[[2-(dimethylamino)ethyl](methyl)amino]acetyl}amino)phenyl]-481.6
ethynyl}benzamide
5524-({4-[({[2-(acetylamino)ethyl]amino}acetyl)amino]phenyl}ethynyl)-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-481.5
oxoethyl]benzamide
553N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(2-cyanoethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide449.5
554N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(2-pyrrolidin-1-ylethyl)amino]acetyl}amino)phenyl]-493.6
ethynyl}benzamide
555N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[4-(dimethylamino)butyl]amino}acetyl)amino]phenyl}-495.6
ethynyl}benzamide
556N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(morpholin-4-ylacetyl)amino]phenyl}ethynyl}benzamide466.5
557N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(azepan-1-ylacetyl)amino]phenyl}ethynyl)benzamide478.6
558N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(pyrrolidin-1-ylacetyl)amino]phenyl}ethynyl)benzamide450.5
5591-{2-[(4-{[4-({[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]amino}carbonyl)phenyl]ethynyl}phenyl)amino]-2-507.6
oxoethyl}piperidine-4-carboxamide
5604-{[4-({[(3R)-3-(acetylamino)pyrrolidin-1-yl]acetyl}amino)phenyl]ethynyl}-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-507.6
oxoethyl]benzamide
561N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(3R)-3-(dimethylamino)pyrrolidin-1-493.6
yl]acetyl}amino)phenyl]ethynyl}benzamide
562N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(2-aminopyrrolidin-1-yl)acetyl]amino}phenyl)ethynyl]benzamide465.5
563N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(piperidin-3-ylamino)acetyl]amino)phenyl}ethynyl]benzamide479.6
564N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(piperidin-4-ylamino)acetyl]amino}phenyl)ethynyl]benzamide479.6
565N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(piperidin-2-ylmethyl)amino]acetyl}amino)phenyl]-493.6
ethynyl}benzamide
566N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(piperidin-3-ylmethyl)amino]acetyl}amino)phenyl]-493.6
phenyl]ethynyl}benzamide
567N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(pyridin-2-ylmethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide487.5
568N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(pyridin-4-ylmethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide487.5
569N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(2-pyridin-2-ylethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide501.6
570N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(2-pyridin-3-ylethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide501.6
571N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(2-pyridin-4-ylethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide501.6
572N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(phenylamino)acetyl]amino}phenyl)ethynyl]benzamide472.5
573N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(phenylmethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide486.5
574N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(2-phenylethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide500.6
575N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(1H-imidazol-1-ylacetyl)amino]phenyl]ethynyl}benzamide447.5
576N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[(1H-imidazol-1-ylacetyl)amino]phenyl)ethynyl}benzamide462.5
577N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(phenylamino)acetyl]amino}phenyl)ethynyl]benzamide487.5
578N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(2-phenylethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide515.6
579N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(3-phenylpropyl)amino]acetyl}amino)phenyl]ethynyl}benzamide529.6
5804-[(3-{[(aminomethyl)amino]methyl}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide425.5
5814-[(2-aminopyrimidin-5-yl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide356.4
5824-[(4-acetylphenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide381.4
583N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[({2-[4-(phenylmethyl)piperidin-1-yl]ethyl}amino)-613.7
acetyl]amino}phenyl)ethynyl]benzamide
5844-{[4-({[(aminoacetyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide468.5
5854-{[4-({[4-(2-hydroxyethyl)piperazin-1-yl]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-524.6
[(hydroxyamino)carboynl]propyl}benzamide
586N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[({(3R)-3-[(trifluoroacetyl)amino]pyrrolidin-1-576.5
yl}acetyl)amino]phenyl}ethynyl)benzamide
587N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(methylamino)acetyl]amino}phenyl)ethynyl]benzamide425.5
588N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[(piperazin-1-ylacetyl)amino]phenyl}ethynyl)benzamide480.5
589N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(pyridin-2-ylmethyl)amino]acetyl}amino)-502.5
phenyl]ethynyl}benzamide
590N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(pyridin-4-ylmethyl)amino]acetyl}amino)-502.5
phenyl]ethynyl}benzamide
591N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(2-pyridin-3-ylethyl)amino]acetyl}amino)-516.6
phenyl]ethynyl}benzamide
592N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(2-pyridin-4-ylethyl)amino]acetyl}amino)-516.6
phenyl]ethynyl}benzamide
5934-({4-[({{(2-fluorophenyl)methyl]amino}acetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-519.5
carbonyl]propyl}benzamide
5944-({4-[({[(2-chlorophenyl)methyl]amino}acetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-536.0
carbonyl]propyl}benzamide
595N-{(1S,2R)-2-hydroxy-1-(hydroxyamino)carbonyl]propyl}-4-[(4-{[({[2-(methyloxy)phenyl]methyl}amino)-531.6
acetyl]amino}phenyl)ethynyl]benzamide
5964-({4-[({[(3-fluorophenyl)methyl]amino}acetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-519.5
carbonyl]propyl}benzamide
5974-({4-[({[(3-chlorophenyl)methyl]amino}acetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-536.0
carbonyl]propyl}benzamide
598N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[({[3-(methyloxy)phenyl]methyl}amino)-531.6
acetyl]amino}phenyl)ethynyl]benzamide
599N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[({[(3-methylphenyl)methyl]amino}acetyl)-515.6
amino]phenyl}ethynyl)benzamide
600N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[({[3-(trifluoromethyl)phenyl]methyl}amino)-569.5
acetyl]amino}phenyl)ethynyl]benzamide
601N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[({3-[(trifluoromethyl)oxy]phenyl}methyl)amino]-585.5
acetyl}amino)phenyl]ethynyl}benzamide
6024-({4-[({[(4-fluorophenyl)methyl]amino}acetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-519.5
carbonyl]propyl}benzamide
603N-{(1S,2R)-2-hydroxy-1-(hydroxyamino)carbonyl]propyl}-4-({4-[({[(4-methylphenyl)methyl]amino}acetyl)-515.6
amino]phenyl}ethynyl]benzamide
6044-[(4-{[({[4-(dimethylamino)phenyl]methyl}amino)acetyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-544.6
[(hydrodxyamino)carbonyl]propyl}benzamide
605N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[({[4-(trifluoromethyl)phenyl]methyl}amino)-569.5
acetyl]amino}phenyl)ethynyl]benzamide
6064-[(4-{[({[4-fluoro-2-(trifluoromethyl)phenyl]methyl}amino)acetyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-587.5
[(hydroxyamino)carbonyl]propyl}benzamide
6074-({4-[({[(2,4-difluorophenyl)methyl]amino}acetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-537.5
[(hydroxyamino)carbonyl]propyl}benzamide
6084-({4-[({[(2,4-dichlorophenyl)methyl]amino}acetyl)amino)phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-570.4
[(hydroxyamino)amino)carbonyl]propyl}benzamide
6094-{[4-({[(2-fluorophenyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide505.5
6104-{[4-({[(4-fluorophenyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide505.5
6114-({4-[({[(3,5-difluorophenyl)methyl]amino}acetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-537.5
[(hydroxyamino)carbonyl]propyl}benzamide
6124-{[4-({[(4-bromophenyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide566.4
6134-({4-[({[4-dimethylamino)phenyl]amino}acetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-530.6
[(hydroxyamino)carbonyl]propyl}benzamide
614N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(2S)-2-aminopropanoyl]amino}phenyl)ethynyl]benzamide410.4
615N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(2R)-2-aminopropanoyl]amino}phenyl)ethynyl]benzamide410.4
616N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(2S)-2-amino-4-methylpentanoyl]amino}phenyl)ethynyl]benzamide452.5
6174-[(4-{[(2S,3R)-2-amino-3-hydroxybutanoyl]amino}phenyl)ethynyl]-N-[(1S)-1-(aminomethyl)-2-440.5
(hydroxyamino)-2-oxoethyl]benzamide
6184-[(4-{[(2S)-2-amino-4-cyanobutanoyl]amino}phenyl)ethynyl]-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]benzamide449.5
619N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(2S)-2,3-diaminopropanoyl]amino}phenyl]ethynyl]benzamide425.5
620(2S)-N-(4-{[4-({[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]amino}carbonyl)phenyl]ethynyl}phenyl)-436.5
pyrrolidine-2-carboxamide
621(2S)-N-(4-{[4-({[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]amino}carbonyl)phenyl]ethynyl}phenyl)-450.5
piperidine-2-carboxamide
622N-(4-{[4-({[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]amino}carbonyl)phenyl]ethynyl}phenyl)piperidine-3-carboxamide450.5
6234-[(4-{[(2S)-2-amino-3-(1H-imidazol-4-yl)propanoyl]amino}phenyl)ethynyl]-N-[(1S)-1-(aminomethyl)-2-476.5
(hydroxyamino)-2-oxoethyl]benzamide
624N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-methylphenyl)ethynyl]benzamide338.4
625N-{(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl}-4-[(2-fluorophenyl)ethynyl]benzamide342.3
626N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(3-fluorophenyl)ethynyl]benzamide342.3
627N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-fluotophenyl)ethynyl]benzamide342.3
628N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-chlorophenyl)ethynyl]benzamide358.8
6294-[(4-{[(2S)-2-amino-4-methylpentanoyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide467.5
6304-[(4-{[(2S)-2-amino-4-cyanonutanoyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide464.5
6314-[(4-{[(2S)-2,3-diaminopropanoyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide440.5
632N-[4-({4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}ethynyl)phenyl}piperidine-3-carboxamide465.5
633N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({3-[(morpholine-4-ylacetyl)amino]phenyl}ethynyl)benzamide481.5
634N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(pyrazin-2-ylethynyl)benzamide341.3
635N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-([4-[({[3-(1H-imidazol-1-yl)propyl]amino}acetyl)-519.6
amino]phenyl}ethynyl)benzamide
636N-{(1S)-2-(hydroxyamino)-1-{[({[3-(1H-imidazol-1-yl)phenyl]amino}acetyl)amino]methyl}-2-oxoethyl)-4-(phenylethynyl)benzamide489.5
6374-({4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}ethynyl)benzoic acid383.4
638N-(2-{[4-({4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}ethynyl)phenyl]amino}-2-559.5
oxoethyl)-1,3-benzodioxole-4-carboxamide
6394-({4-[((2R)-2-{[(2R)-2,5-diaminopentanoyl]amino}-4-phenylbutanoyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-629.7
hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide
6404-[(4-{[(2R)-2-amino-4-phenylbutanoyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide515.6
6414-[(4-{[(2S)-2-amino-3-phenylpropanoyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide501.6
6424-{[4-({[(2-aminoethyl)amino]acetyl}amino)phenyl]ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide454.5
643N-{(1S)-2-(hydroxyamino)-1-[({[methyl(1-methylpiperidin-4-yl)amino]acetyl}amino)methyl]-2-oxoethyl}-4-(phenylethynyl)benzamide492.6
6444-[(4-{[(cyclobutylamino)acetyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide465.5
6454-[(4-{[(cyclopentylamino)acetyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide479.5
6464-[(4-{[(cyclohexylamino)acetyl]amino]phenyl}ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide493.6
6474-[(4-{[(cycloheptylamino)acetyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide507.6
6484-[(4-{[(cycloctylamino)acetyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide521.6
649N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(propylamino)acetyl]amino}phenyl)ethynyl]benzamide453.5
6504-[(4-{[(hexylamino)acetyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide495.6
651N-[(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(1-methylethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide453.5
6524-{[4-({[(1,1-dimethylethyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-467.5
carbonyl]propyl}benzamide
6534-{[4-({[ethyl(methyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide453.5
6544-[(4-{[(diethylamino)acetyl]amino}phenyl)ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide467.5
6554-{[4-({[(1,1-dimethylethyl}(methyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-481.6
carbonyl]propyl}benzamide
6564-{[4-({[cyclohexyl](methyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-507.6
[(hydroxyamino)carbonyl]propyl}benzamide
6574-{[4-({[bis(1-methylethyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide495.6
6584-{[4-({[(cyclohexylmethyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-507.6
carbonyl]propyl}benzamide
6594-{[4-({[(2,3-dimethylcyclohexyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-521.6
carbonyl]propyl}benzamide
6604-{[4-({[(1R,2R,4S)-bicyclo[2.2.1]hept-2-ylamino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-505.6
[(hydroxyamino)carbonyl]propyl}benzamide
6614-[(4-{[({[(1S,2R,5S)-6,6-dimethylbicyclo[3.1.1]hept-2-yl]methyl}amino)acetyl]amino}phenyl)ethynyl]-N-547.7
{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide
662N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[4-(trifluoromethyl)piperidin-1-yl]acetyl}amino)-547.5
phenyl]ethynyl}benzamide
663N-{(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(2-fluorophenyl)methyl]amino}acetyl)amino]phenyl}-504.5
ethynyl)benzamide
664N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(2-chlorophenyl)methyl]amino}acetyl)amino]phenyl}-521.0
ethynyl)benzamide
665N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(2-methylphenyl)methyl]amino}acetyl)amino]phenyl}-500.6
ethynyl)benzamide
666N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[({[2-(methyloxy)phenyl]methyl}amino)acetyl]amino}-516.6
phenyl)ethynyl]benzamide
667N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[({[2-(trifluoromethyl)phenyl]methyl}amino)acetyl]amino}-554.5
phenyl)ethynyl}benzamide
668N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[({2-[(trifluoromethyl)oxy]phenyl}methyl)amino]acetyl}-570.5
amino)phenyl]ethynyl}benzamide
669N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(3-fluorophenyl)methyl]amino]acetyl)amino]-504.5
phenyl}ethynyl)benzamide
670N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(3-chlorophenyl)methyl]amino}acetyl)amino]-521.0
phenyl}ethynyl)benzamide
671N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(3-methylphenyl)methyl]amino}acetyl)amino]-500.6
phenyl}ethynyl)benzamide
672N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[({[3-(methyloxy)phenyl]methyl}amino)acetyl]amino}-516.6
phenyl)ethynyl]benzamide
673N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[({[3-(trifluoromethyl)phenyl]methyl}amino)acetyl]amino}-554.5
phenyl)ethynly]benzamide
674N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[({3-[(trifluoromethyl)oxy]phenyl}methyl)amino]acetyl}-570.5
amino)phenyl]ethynyl}benzamide
675N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(4-fluorophenyl)methyl]amino}acetyl)amino]phenyl}-504.5
ethynyl)benzamide
676N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(4-chlorophenyl)methyl]amino}acetyl)amino]phenyl}-521.0
ethynyl)benzamide
677N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(4-methylphenyl)methyl]amino}acetyl)amino]phenyl}-500.6
ethynyl)benzamide
678N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[({[4-(methyloxy)phenyl]methyl}amino)acetyl]amino}-516.6
phenyl)ethynyl]benzamide
679N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[({[4-(trifluoromethyl)phenyl]methyl}amino)acetyl]amino}-554.5
phenyl)ethynyl]benzamide
680N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[({[4-(1,1-dimethylethyl)phenyl]methyl}amino)acetyl]amino}-542.6
phenyl)ethynyl]benzamide
681N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(1R)-1-phenylethyl]amino)acetyl}amino]phenyl}ethynyl)benzamide500.6
682N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(1S)-1-phenylethyl]amino}acetyl)amino]phenyl}ethynyl)benzamide500.6
683N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(cyclohexylmethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide492.6
684N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(cyclobutylamino)acetyl]amino}phenyl)ethynyl]benzamide450.5
685N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(cyclopentylamino)acetyl]amino}phenyl)ethynyl]benzamide464.5
686N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(cyclohexylamino)acetyl]amino}phenyl)ethynyl]benzamide478.6
687N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(cycloheptylamino)acetyl]amino}phenyl)ethynyl]benzamide492.6
688N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(cyclooctylamino)acetyl]amino}phenyl)ethynyl]benzamide506.6
689N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(ethylamino)acetyl]amino}phenyl)ethynyl]benzamide424.5
690N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(propylamino)acetyl]amino}phenyl)ethynyl]benzamide438.6
691N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(butylamino)acetyl]amino}phenyl)ethynyl]benzamide452.5
692N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(hexylamino)acetyl]amino}phenyl)ethynyl]benzamide480.6
693N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(1-methylethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide438.5
694N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(1,1-dimethylethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide452.5
695N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[ethyl(methyl)amino]acetyl}amino)phenyl]ethynyl}benzamide438.5
696N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(diethylamino)acetyl]amino}phenyl)ethynyl]benzamide452.5
697N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(1,1-dimethylethyl)(methyl)amino]acetyl}amino)-466.6
phenyl]ethynyl}benzamide
698N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[cyclohexyl)methyl)amino]acetyl}amino)-492.6
phenyl]ethynyl}benzamide
699N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[2-(2-fluorophenyl)ethyl]amino}acetyl)amino]-518.6
phenyl}ethynyl)benzamide
700N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[2-(3-fluorophenyl)ethyl]amino}acetyl)amino]-518.6
phenyl}ethynyl)benzamide
701N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[2-(4-fluorophenyl)ethyl]amino}acetyl)amino]-518.6
phenyl}ethynyl)benzamide
702N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(1S,2R)-2-phenylcyclopropyl]amino}acetyl)amino]-512.6
phenyl}ethynyl}benzamide
703N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(2,4-difluorophenyl)methyl]amino}acetyl)amino]-522.5
phenyl}ethynyl)benzamide
704N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[{4-[({[(2,4-dichlorophenyl)methyl]amino}acetyl)amino]-555.4
phenyl}ethynyl)benzamide
705N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[({[4-fluoro-2-(trifluoromethyl)phenyl]methyl}amino)-572.5
acetyl]amino}phenyl)ethynyl]benzamide
706N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(2,5-difluorophenyl)methyl]amino}acetyl)amino]-522.5
phenyl}ethynyl)benzamide
707N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(3,4-difluorophenyl)methyl]amino}acetyl)amino]-522.5
phenyl}ethynyl)benzamide
708N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(3,4-dichlorophenyl)methyl]amino}acetyl)amino]-555.4
phenyl}ethynyl)benzamide
709N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(3,4-dimethylphenyl)methyl]amino}acetyl)amino]-514.6
phenyl}ethynyl)benzamide
710N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(3,5-difluorophenyl)methyl]amino}acetyl)amino]-522.5
phenyl}ethynyl)benzamide
711N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-([4-[({[(3,5-dichlorophenyl)methyl]amino}acetyl)amino]-555.4
phenyl}ethynyl)benzamide
712N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[({[3,5-bis(trifluoromethyl)phenyl]methyl}amino)-622.5
acetyl]amino}phenyl)ethynyl]benzamide
713N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(4-nitrophenyl)methyl]amino}acetyl)amino]-531.5
phenyl}ethynyl)benzamide
714N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(pyridin-2-ylamino)acetyl]amino}phenyl)ethynyl]benzamide473.5
715N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(pyridin-3-ylamino)acetyl]amino}phenyl)ethynyl]benzamide473.5
716N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(2-fluorophenyl)amino]acetyl}amino)phenyl]ethynyl}benzamide490.5
717N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(3-fluorophenyl)amino]acetyl}amino)phenyl]ethynyl}benzamide490.5
718N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(4-fluorophenyl)amino]acetyl}amino)phenyl]ethynyl}benzamide490.5
719N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(pyridin-4-ylamino)acetyl]amino}phenyl)ethynyl]benzamide473.5
720N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(2,2,2-trifluoroethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide478.4
721N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(pyridin-2-ylamino)acetyl]amino}phenyl)ethynyl]benzamide488.5
722N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(pyridin-3-ylamino)acetyl]amino}phenyl)ethynyl]benzamide488.5
723N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(pyridin-4-ylamino)acetyl]amino}phenyl)ethynyl]benzamide488.5
724N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(4-phenylpiperazin-1-yl)acetyl]amino}phenyl)ethynyl]benzamide556.6
7254-{[4-({[4-(4-fluorophenyl)piperazin-1-yl]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-574.6
carbonyl]propyl}benzamide
7264-{[4-({[(1-acetylpiperidin-4-yl)(cyclopropyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-576.7
[(hydroxyamino)carbonyl]propyl}benzamide
7274-[(4-{[(butylamino)acetyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide467.5
728N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-([4-{({[(1R)-1-phenylethyl]amino}acetyl)amino]phenyl}-515.6
ethynyl)benzamide
729N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[({[(1S)-1-phenylethyl]amino}acetyl)amino]phenyl}-515.6
ethynyl)benzamide
7304-{[4-({[cyclopropyl(methyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-465.5
carbonyl]propyl}benzamide
731N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[methyl(phenylmethyl)amino]acetyl}amino)-515.6
phenyl]ethynyl}benzamide
732N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[cyclopropyl(methyl)amino]acetyl}amino)phenyl]ethynyl}benzamide450.5
7334-[(4-{[(2S)-2-aminopropanoyl]amino)phenyl}ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide425.5
7344-[(4-{[(2R)-2-aminopropanoyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide425.5
7354-[(4-{[(2S)-2-amino-3-methylbutanoyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide453.5
7364-[(4-{[(2S,3R)-2-amino-3-hydroxybutanoyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-455.5
carbonyl]propyl}benzamide
737(2S)-N-[4-({4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}ethynyl)phenyl]-451.5
pyrrolidine-2-carboxamide
7384-[(4-{[(2S)-2-amino-3-(1H-imidazol-4-yl)propanoyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-491.5
carbonyl]propyl}benzamide
739N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(methyloxy)acetyl]amino}phenyl)ethynyl]benzamide426.4
7404-[(4-{[(2S)-2-amino-3-methylbutanoyl]amino}phenyl)ethynyl]-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]benzamide438.5
741N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(3-phenylpropyl)amino]acetyl}amino)phenyl]ethynyl}benzamide514.6
742N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(thien-2-ylethynyl)benzamide345.4
7434-({4-[((2S)-2-{[(2S)-2,5-diaminopentanoyl]amino}-3-phenylpropanoyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-615.7
[(hydroxyamino)carbonyl]propyl}benzamide
7443,4-dihydroxy-N-[(2S)-3-(hydroxyamino)-3-oxo-2-({[4-(phenylethynyl)phenyl]carbonyl]amino)propyl]benzamide460.5
7451,1-dimethylethyl 3-[(2-{[(2S)-3-hydroxyamino)-3-oxo-2-({[4-(phenylethynyl)phenyl]carbonyl}amino)propyl]amino}-2-538.6
oxoethyl)amino]propylcarbamate
746N-[(1S)-2-(hydroxyamino)-1-({[(4-methylpiperazin-1-yl)acetyl]amino}methyl)-2-oxoethyl]-4-(phenylethynyl)benzamide464.5
7474-{[4-({2-[(2-aminoethyl)amino]-2-oxoethyl}oxy)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-455.5
carbonyl]propyl}benzamide
748N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[3-(aminomethyl)phenyl]ethynyl}benzamide353.4
7491,1-dimethylethyl (2S)-3-(hydroxyamino)-2-[({4-[(4-{[2-(hydroxyamino)-2-oxoethyl]oxy}phenyl)ethynyl]phenyl}carbonyl)-513.5
amino]-3-oxopropylcarbamate
750N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[2-(hydroxyamino)-2-oxoethyl]oxy}phenyl)ethynyl]benzamide413.4
7513,4-dihydroxy-N-(2-{[4-({4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}ethynyl)phenyl]-547.5
amino}-2-oxoethyl)benzamide
7524-({4-[({[(2S)-2,5-diaminopentanoyl]amino}acetyl)amino]phenyl}-ethynyl)-N-{(1S,2R)-2-hydroxy-1-525.6
[(hydroxyamino)carbonyl]propyl}benzamide
7534-[(4-{[(2-aminoethyl)amino]carbonyl}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide425.5
754N-[(1S)-1-[({[(3-aminopropyl)amino]acetyl}amino)methyl]-2-(hydroxyamino)-2-oxoethyl]-4-(phenylethynyl)benzamide438.5
7553-({4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}ethynyl)benzoic acid383.4
7564-{[4-({[(3-aminopropyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamini)carbonyl]propyl}benzamide468.5
757N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(pyrazin-2-ylethynyl)benzamide326.3
7584-({3-[(4-aminobutanoyl)amino]phenyl}ethynyl)-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]benzamide424.5
759N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(2S)-2,5-diaminopentanoyl]amino}phenyl)ethynyl]benzamide453.5
7604-({2-[(aminomethyl)amino]phenyl}ethynyl)-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]benzamide396.4
761N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(2-ethylamino)-2-oxoethyl]phenyl}ethynyl)benzamide409.5
7624-({4-[(aminoacetyl)amino]-3-methylphenyl}ethynyl)-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]benzamide410.4
7634-({4-[(aminoacetyl)amino]phenyl}ethynyl)-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-3-fluorobenzamide414.4
764N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(cyanomethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide435.5
765[4-({4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}ethynyl)phenyl]acetic acid397.4
7664-amino-2-({[4-({4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}ethynyl)-497.5
phenyl]carbonyl}amino)-4-oxobutanoic acid
7674-amino-2-[({[4-({4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}ethynyl)-527.5
phenyl]oxy)acetyl)amino]-4-oxobutanoic acid
768N-{(1S)-2-(hydroxyamino)-1-{[(morrpholin-4-ylacetyl)amino]methyl}-2-oxoethyl)-4-(phenylethynyl)benzamide451.5
769N-[(1S)-1-[({[(2,3-dihydroxypropyl)thio]acetyl}amino)methyl]-2-(hydroxyamino)-2-oxoethyl]-4-(phenylethynyl)benzamide472.5
770methyl (2S)-3-amino-2-({[4-(phenylethynyl)phenyl]carbonyl}amino)propanoate323.4
771N-{(1S)-2-(hydroxyamino)-2-oxo-1-[({[(2-phenylethyl)amino]acetyl}amino)methyl]ethyl}-4-(phenylethynyl)benzamide485.6
7724-[(4-{2-[(2-aminoethyl)amino]-2-oxoethyl}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide439.5
7734-[(4-{[(6-aminohexyl)amino]carbonyl}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide481.6
7744-[4-(4-{[(ethylamino)acetyl]amino}phenyl)buta-1,3-diynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide463.5
7754-[4-(4-{[(cyclopropylamino)acetyl]amino}phenyl)buta-1,3-diynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-475.5
carbonyl]propyl}benzamide
776N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(4-{4-[(piperidin-1-ylacetyl)amino]phenyl}-buta-1,3-diynyl)benzamide503.6
777N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[4-(4-{[(phenylamino)acetyl]amino}phenyl)buta-1,3-diynyl]benzamide511.5
778N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]prropyl}-4-{4-[4-({[(phenylmethyl)amino]acetyl}amino)-525.6
phenyl]buta-1,3-diynyl}benzamide
779N-{(1S,2R)-2-amino-1-[(hydroxyamino)carbonyl]propyl}-4′-ethyl-1,1′-biphenyl-4-carboxamide342.4
7804-[(4-{[(dimethylamino)acetyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide439.5
781N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[(pyrrolidin-1-ylacetyl)amino]phenyl}ethynyl)benzamide465.5
782N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(pentylamino)acetyl]amino}phenyl)ethynyl]benzamide481.6
783N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(thien-2-ylmethyl)amino]acetyl}amino)phenyl]ethynyl)benzamide507.6
7844-{[4-({[(1H-benzimidazol-2-ylmethyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-541.6
carbonyl]propyl}benzamide
7854-{[4-({[(1-benzothien-3-ylmethyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-557.6
carbonyl]propyl}benzamide
7864-(4-{4-[({[(2-fluorophenyl)methyl]amino}acetyl)amino]phenyl}buta-1,3-diynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-543.6
carbonyl]propyl}benzamide
7874-(4-{4-[({[(3-fluorophenyl)methyl]amino}acetyl)amino]phenyl}buta-1,3-diynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-543.6
carbonyl]propyl}benzamide
7884-(4-{4-[({[(4-fluorophenyl)methyl]amino}acetyl)amino]phenyl}buta-1,3-diynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-543.6
carbonyl]propyl}benzamide
789N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(4-{4-[({[(2-methylphenyl)methyl]amino}acetyl)amino]-539.6
phenyl}buta-1,3-diynyl)benzamide
790N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(4-{4-[({[(3-methylphenyl)methyl]amino}acetyl)amino]-539.6
phenyl}buta-1,3-diynyl)benzamide
791N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(4-{4-[({[(4-methylphenyl)methyl]amino}acetyl)amino]-539.6
phenyl}buta-1,3-diynyl)benzamide
792N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{4-[4-({[(pyridin-2-ylmethyl)amino]acetyl}amino)phenyl]-526.6
buta-1,3-diynyl}benzamide
793N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{4-[4-({[(pyridin-3-ylmethyl)amino]acetyl}amino)phenyl]-526.6
buta-1,3-diynyl}benzamide
794N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{4-[4-({[(pyridin-4-ylmethyl)amino]acetyl}amino)phenyl]-526.6
buta-1,3-diynyl}benzamide
795N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[4-(4-{[({[2-(methyloxy)phenyl]methyl}amino)acetyl]amino}-555.6
phenyl)buta-1,3-diynyl]benzamide
796N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[4-(4-{[({[3-(methyloxy)phenyl]methyl}amino)acetyl]amino}-555.6
phenyl)buta-1,3-diynyl]benzamide
797N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[4-(4-{[({[4-(methyloxy)phenyl]methyl}amino)acetyl]amino}-555.6
phenyl)buta-1,3-diynyl]benzamide
7984-{4-[4-({[(2-fluorophenyl)amino]acetyl}amino)phenyl]buta-1,3-diynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-529.5
carbonyl]propyl}benzamide
7994-{4-[4-({[(3-fluorophenyl)amino]acetyl}amino)phenyl]buta-1,3-diynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-529.5
carbonyl]propyl}benzamide
8004-{4-[4-({[(4-fluorophenyl)amino]acetyl}amino)phenyl]buta-1,3-diynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-529.5
carbonyl]propyl}benzamide
801N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[4-(4-{[(pyridin-2-ylamino)acetyl]amino}phenyl)-512.5
buta-1,3-diynyl]benzamide
802N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[4-(4-{[(pyridin-3-ylamino)acetyl]amino}phenyl)-512.5
buta-1,3-diynyl]benzamide
803N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[4-(4-{[(pyridin-4-ylamino)-512.5
acetyl]amino}phenyl)buta-1,3-diynyl]benzamide
8044-[4-(4-{[(cyclobutylamino)acetyl]amino}phenyl)buta-1,3-diynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-489.5
carbonyl]propyl}benzamide
8054-[4-(4-{[(cyclopentylamino)acetyl]amino}phenyl)buta-1,3-diynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-503.6
carbonyl]propyl}benzamide
8064-[4-(4-{[(cyclohexylamino)acetyl]amino}phenyl)buta-1,3-diynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-517.6
carbonyl]propyl}benzamide
8074-[4-(4-{[(cycloheptylamino)acetyl]amino}phenyl)buta-1,3-diynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-531.6
carbonyl]propyl}benzamide
808N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[4-(4-{[(methylamino)acetyl]amino}phenyl)buta-1,3-diynyl]benzamide449.5
809N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[4-(4-{[(propylamino)acetyl]amino}phenyl)buta-1,3-diynyl]benzamide477.5
8104-[4-(4-{[(butylamino)acetyl]amino}phenyl)buta-1,3-diynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide491.6
811N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[4-(4-{[(pentylamino)acetyl]amino}phenyl)buta-1,3-diynyl]benzamide505.6
8124-{4-(4-{[(hexylamino)acetyl]amino}phenyl)buta-1,3-diynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide519.6
8134-{4-[4-({[ethyl(methyl)amino]acetyl}amino)phenyl]buta-1,3-diynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-477.5
carbonyl]propyl}benzamide
814N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{4-[4-({[(1-methylethyl)amino]acetyl}amino)-477.5
phenyl]buta-1,3-diynyl}benzamide
815N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{4-[4-({[(2-methylpropyl)amino]acetyl}amino)-491.6
phenyl]buta-1,3-diynyl}benzamide
816N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{4-[4-({[(2,2,2-trifluoromethyl)amino]acetyl}amino)-517.5
phenyl]buta-1,3-diynyl}benzamide
8174-{4-[4-({[(2-hydroxyethyl)amino]acetyl}amino)phenyl]buta-1,3-diynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-479.5
carbonyl]propyl}benzamide
818N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(4-{4-[({[2-(methyloxy)ethyl]amino}acetyl)amino]phenyl}-493.5
buta-1,3-diynyl)benzamide
8194-(4-{4-[({[2-(dimethylamino)ethyl]amino}acetyl)amino]phenyl}buta-1,3-diynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-506.6
carbonyl]propyl}benzamide
8204-{4-[4-({[(2-cyanoethyl)amino]acetyl}amino)phenyl]buta-1,3-diynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-488.5
carbonyl]propyl}benzamide
821N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(4-{4-[(pyrrolidin-1-ylacetyl)amino]phenyl}buta-1,3-diynyl)benzamide489.5
8224-(4-{4-[(azepan-1-ylacetyl)amino]phenyl}buta-1,3-diynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide517.6
823N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[4-(4-{[(4-methylpiperazin-1-yl)acetyl]amino}phenyl)-518.6
buta-1,3-diynyl]benzamide
824N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(4-{4-[(morpholin-4-ylacetyl)amino]phenyl}-505.5
buta-1,3-diynyl)benzamide
8254-{4-[4-({[cyclohexyl(methyl)amino]acetyl}amino)phenyl]buta-1,3-diynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-531.6
carbonyl]propyl}benzamide
826N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(4-{4-[({[(1R)-1-phenylethyl]amino}acetyl)amino]phenyl}-539.6
buta-1,3-diynyl)benzamide
827N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(4-{4-[({[(1S)-1-phenylethyl]amino}acetyl)amino]phenyl}-539.6
buta-1,3-diynyl)benzamide
828N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{4-[4-({[(2-phenylethyl)amino]acetyl}amino)phenyl]-539.6
buta-1,3-diynyl}benzamide
829N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(4-{4-[(1H-imidazol-1-ylacetyl)amino]phenyl}buta-1,3-diynyl)benzamide486.5
8304-{4-[4-({[(1R,2R,4S)-bicyclo[2.2.1]hept-2-ylamino]acetyl}amino)phenyl}buta-1,3-diynyl}-N-{(1S,2R)-2-hydroxy-1-529.6
[(hydroxyamino)carbonyl]propyl}benzamide
8314-{4-[4-({[(cyclohexylmethyl)amino]acetyl}amino)phenyl]buta-1,3-diynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-531.6
carbonyl]propyl}benzamide
832N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4′-ethyl-2-fluoro-1,1′-biphenyl-4-carboxamide346.4
8334-({4-[(aminoacetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-3-(methyloxy)benzamide441.5
8344′-ethyl-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-2-(methyloxy)-1,1′-biphenyl-4-carboxamide373.4
835N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-3-(methyloxy)4-(phenylethynyl)benzamide369.4
8364-[(4-ethylphenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide367.4
837N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-hydroxyphenyl)ethynyl]benzamide355.4
8382-[(2-{[(2S)-3-(hydroxyamino)-3-oxo-2-({[4-(phenylethynyl)phenyl]carbonyl}amino)propyl]amino}-2-oxoethyl)thio]propanoic acid470.5
8394-amino-2-[(2-{[(2S)-3-(hydroxyamino)-3-oxo-2-({[4-(phenylethynyl)phenyl]carbonyl}amino)propyl]amino}-2-496.5
oxoethyl)amino]-4-oxobutanoic acid
8401,1-dimethylethyl-4-amino-2-[(2-{[(2S)-3-(hydroxyamino)-3-oxo-2-({[4-(phenylethynyl)phenyl]carbonyl}amino)-552.6
propyl]amino}-2-oxoethyl)amino]-4-oxobutanoate
8412,6-dihydroxy-N-[(2S)-3-(hydroxyamino)-3-oxo-2-({[4-(phenylethynyl)phenyl]carbonyl}amino)propyl]pyridine-4-carboxamide461.4
842N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-aminophenyl)ethynyl]benzamide339.4
843N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-ethylphenyl)ethynyl]benzamide352.4
844N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-ethylphenyl)ethynyl]-3-fluorobenzamide370.4
845N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(3-aminopropanoyl)amino]phenyl}ethynyl)benzamide410.4
846N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(dimethylamino)acetyl]amino}phenyl)ethynyl]benzamide424.5
8474-({4-[(4-aminobutanoyl)amino]phenyl}ethynyl)-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]benzamide424.5
848N-[(1S)-2-(hydroxyamino)-1-[({[2-(methyloxy)phenyl]methyl}amino)methyl]-2-oxoethyl}-4-(phenylethynyl)benzamide444.5
849N-[(1S)-1-[(diprop-2-enylamino)methyl]-2-(hydroxyamino)-2-oxoethyl]-4-(phenylethynyl)benzamide404.5
850N-[(1S)-2-(hydroxyamino)-1-({[({[2-(methyloxy)phenyl]methyl}amino)acetyl]amino}methyl)-2-oxoethyl]-4-(phenylethynyl)benzamide501.6
851N-{(1S)-2-(hydroxyamino)-1-{[({[2-(methyloxy)phenyl]thio}acetyl)amino]methyl}-2-oxoethyl)-4-(phenylethynyl)benzamide504.6
852(2S,3R)-3-amino-2-({[4-(phenylethynyl)phenyl]carbonyl}amino)butanic acid323.4
853N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-{[(dimethylamino)acetyl]amino}phenyl)buta-1,3-diynyl]benzamide448.5
854N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-{[(ethylamino)acetyl]amino}phenyl)buta-1,3-diynyl]benzamide448.5
855N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-{[(cyclopropylamino)acetyl]amino}phenyl)buta-1,3-diynyl]benzamide460.5
856N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-{4-[(piperidin-1-ylacetyl)amino]phenyl}buta-1,3-diynyl)benzamide488.6
857N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxethyl]-4-[4-(4-{[(phenylamino)acetyl]amino}phenyl)buta-1,3-diynyl]benzamide496.5
858N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[4-({[(phenylmethyl)amino]acetyl}amino)phenyl]-510.6
buta-1,3-diynyl}benzamide
859N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-aminophenyl)buta-1,3-diynyl]benzamide363.4
860N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(pyrazin-2-ylamino)acetyl]amino}phenyl)ethynyl]benzamide489.5
861N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(4-phenylpiperidin-1-yl)acetyl]amino}phenyl)ethynyl]benzamide555.6
8624-{[4-({[4-(2-fluorophenyl)piperazin-1-yl]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-574.6
carbonyl]propyl}benzamide
8634-{[4-({[(1S,4R)-bicyclo[2.2.1]hept-2-ylamino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-505.6
carbonyl]propyl}benzamide
864N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[({[(1S,2S,3S,5R)-2,6,6-trimethylbicyclo[3.1.1]hept-3-547.7
yl]amino}acetyl)-amino]phenyl}ethynyl)benzamide
865N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(tricyclo[3.3.1.1~3,7~]dec-1-ylmethyl)amino]acetyl}amino)-559.7
phenyl]ethynyl}benzamide
866N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(4-methylcyclohexyl)amino]acetyl}amino)-507.6
phenyl]ethynyl}benzamide
867N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(2,2,2-trifluoroethyl)amino]acetyl}amino)-493.5
phenyl]ethynyl}benzamide
8684-({4-[({[2-(2-fluorophenyl)ethyl]amino}acetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-533.6
carbonyl]propyl}benzamide
8694-({4-[({[2-(3-fluorophenyl)ethyl]amino}acetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-533.6
carbonyl]propyl}benzamide
8704-({4-[({[2-(4-fluorophenyl)ethyl]amino}acetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-533.6
carbonyl]propyl}benzamide
871N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[({[(1S,2R)-2-phenylcyclopropyl]amino}acetyl)-527.6
amino]phenyl}ethynyl)benzamide
872N-{(1S,2R)-2-hydroxy-1-[(hydroxyazmino)carbonyl]propyl}-4-({4-[({[(2-methylphenyl)methyl]amino}acetyl)-515.6
amino]phenyl}ethynyl)benzamide
873N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[({[2-(trifluoromethyl)phenyl]methyl}amino)acetyl]amino}-569.5
phenyl)ethynyl]benzamide
874N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[({2-[(trifluoromethyl)oxy]phenyl}methyl)amino]acetyl}amino)-585.5
phenyl]ethynyl}benzamide
8754-({4-[({[(4-chlorophenyl)methyl]amino}acetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-536.0
carbonyl]propyl}benzamide
876N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[({[4-(methyloxy)phenyl]methyl}amino)acetyl]amino}-531.6
phenyl)ethynyl]benzamide
8774-[(4-{[({[4-(1,1-dimethylethyl)phenyl]methyl}amino)acetyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-557.7
[(hydroxyamino)carbonyl]propyl}benzamide
878N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[({[(4-nitrophenyl)methyl]amino}acetyl)-546.5
amino]phenyl}ethynyl)benzamide
879N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[({4-[(trifluoromethyl)oxy]phenyl}methyl)amino]acetyl}-585.5
amino)phenyl]ethynyl}benzamide
880N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[({[4-(methylthio)phenyl]methyl}amino)-547.6
acetyl]amino}phenyl)ethynyl]benzamide
881N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[({4-[(trifluoromethyl)thio]phenyl}methyl)-601.6
amino]acetyl}amino)phenyl]ethynyl}benzamide
882N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[({[4-(methylsulfonyl)phenyl]methyl}amino)-579.6
acetyl]amino}phenyl)ethynyl]benzamide
8834-({4-[({[(2,5-difluorophenyl)methyl]amino}acetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-537.5
carbonyl]propyl}benzamide
8844-({4-[({[(2,6-difluorophenyl)methyl]amino}acetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-537.5
carbonyl]propyl}benzamide
8854-({4-[({[(3,4-difluorophenyl)methyl]amino}acetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-537.5
carbonyl]propyl}benzamide
8864-({4-[({[(3,4-dichlorophenyl)methyl]amino}acetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-570.4
carbonyl]propyl}benzamide
8874-({4-[({[(3,4-dimethylphenyl)methyl]amino}acetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-529.6
carbonyl]propyl}benzamide
8884-({4-[({[(3,5-dichlorophenyl)methyl]amino}acetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-570.4
carbonyl]propyl}benzamide
8894-[(4-{[({[3,5-bis(trifluoromethyl)phenyl]methyl}amino)acetyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-637.5
[(hydroxyamino)carbonyl]propyl}benzamide
890N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[({[(2,3,4-trifluorophenyl)methyl]amino}acetyl)-555.5
amino]phenyl}ethynyl)benzamide
891N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[({[(2,4,5-trifluorophenyl)methyl]amino}acetyl)-555.5
amino]phenyl}ethynyl)benzamide
892N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[({[(3,4,5-trifluorophenyl)methyl]amino}acetyl)-555.5
amino]phenyl}ethynyl)benzamide
893N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(pentylamino)acetyl]amino}phenyl)ethynyl}benzamide466.6
894N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(thien-2-ylmethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide492.6
895N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(4-phenylpiperidin-1-yl)acetyl]amino}phenyl)ethynyl]benzamide540.6
896N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(4-phenylpiperazin-1-yl)acetyl]amino}phenyl)ethynyl]benzamide541.6
897N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[4-(2-fluorophenyl)piperazin-1-yl]acetyl}amino)-559.6
phenyl]ethynyl}benzamide
898N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[4-(4-fluorophenyl)piperazin-1-yl]acetyl}amino)-559.6
phenyl]ethynyl}benzamide
8994-{[4-({[(1-acetylpiperidin-4-yl)(cyclopropyl)amino]acetyl}amino)phenyl]ethynyl}-N-[(1S)-1-(aminomethyl)-2-561.7
(hydroxyamino)-2-oxoethyl]benzamide
900N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(2,3-dimethylcyclohexyl)amino]acetyl}amino)-506.6
phenyl]ethynyl}benzamide
901N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(1R,2R,4S)-bicyclo[2.2.1]hept-2-ylamino]acetyl}-490.6
amino)phenyl]ethynyl}benzamide
902N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[({[(1S,2R,5S)-6,6-dimethylbicyclo[3.1.1]hept-2-yl]-532.7
methyl}amino)acetyl]amino}phenyl)ethynyl]benzamide
903N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(1S,4R)-bicyclo[2.2.1]hept-2-ylamino]acetyl}amino)-490.6
phenyl]ethynyl}benzamide
904N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(1S,2S,3S,5R)-2,6,6-trimethylbicyclo[3.1.1]hept-3-yl]-532.7
amino}acetyl)amino]phenyl}ethynyl)benzamide
905N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(tricyclo[3.3.1.1~3,7~]dec-1-ylmethyl)amino]acetyl}-544.7
amino)phenyl]ethynyl}benzamide
906N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(2,6-difluorophenyl)methyl]amino}acetyl)-522.5
amino]phenyl}ethynyl)benzamide
907N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[({[4-(methylthio)phenyl]methyl}amino)acetyl]amino}-532.6
phenyl)ethynyl]benzamide
908N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[({[4-(methylsulfonyl)phenyl]methyl}amino)-564.6
acetyl]amino}phenyl)ethynyl]benzamide
909N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[({4-[(trifluoromethyl)thio]phenyl}methyl)amino]acetyl}amino)-586.6
phenyl]ethynyl}benzamide
910N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[({4-[(trifluoromethyl)oxy]phenyl}methyl)amino]acetyl}amino)-570.5
phenyl]ethynyl}benzamide
911N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(2,4,5-trifluorophenyl)methyl]amino}acetyl)-540.5
amino]phenyl}ethynyl)benzamide
912N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(2,3,4-trifluorophenyl)methyl]amino}acetyl)-540.5
amino]phenyl}ethynyl)benzamide
913N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(3,4,5-trifluorophenyl)methyl]amino}acetyl)-540.5
amino]phenyl}ethynyl)benzamide
914N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-{4-[(pyrrolidin-1-ylacetyl)amino]phenyl}buta-1,3-diynyl)benzamide474.5
915N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-{4-[(azepan-1-ylacetyl)amino]phenyl}buta-1,3-diynyl)benzamide502.6
916N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-{4-[(piperazin-1-ylacetyl)amino]phenyl}buta-1,3-diynyl)benzamide489.5
917N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-{[(4-methylpiperazin-1-yl)acetyl]amino}phenyl)-503.6
buta-1,3-diynyl]benzamide
918N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-{4-[(morpholin-4-ylacetyl)amino]phenyl}buta-1,3-diynyl)benzamide490.5
919N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[4-({[cyclohexyl(methyl)amino]acetyl}amino)-516.6
phenyl]buta-1,3-diynyl}benzamide
920N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-{4-[({[(2-fluorophenyl)methyl]amino}acetyl)-528.6
amino]phenyl}buta-1,3-diynyl)benzamide
921N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-{4-[({[(3-fluorophenyl)methyl]amino}acetyl)-528.6
amino]phenyl}buta-1,3-diynyl)benzamide
922N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-{4-[({[(4-fluorophenyl)methyl]amino}acetyl)-528.6
amino]phenyl}buta-1,3-diynyl)benzamide
923N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-{4-[({[(2-methylphenyl)methyl]amino}acetyl)-524.6
amino]phenyl}buta-1,3-diynyl)benzamide
924N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-{4-[({[(3-methylphenyl)methyl]amino}acetyl)-524.6
amino]phenyl}buta-1,3-diynyl)benzamide
925N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-{4-[({[(4-methylphenyl)methyl]amino}acetyl)-524.6
amino]phenyl}buta-1,3-diynyl)benzamide
926N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[4-({[(pyridin-2-ylmethyl)amino]acetyl}amino)-511.6
phenyl]buta-1,3-diynyl}benzamide
927N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[4-({[(pyridin-3-ylmethyl)amino]acetyl}amino)-511.6
phenyl]buta-1,3-diynyl}benzamide
928N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[4-({[(pyridin-4-ylmethyl)amino]acetyl}amino)-511.6
phenyl]buta-1,3-diynyl}benzamide
929N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-{[({[2-(methyloxy)phenyl]methyl}amino)acetyl]amino}-540.6
phenyl)buta-1,3-diynyl]benzamide
930N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-{[({[3-(methyloxy)phenyl]methyl}amino)acetyl]amino}-540.6
phenyl)buta-1,3-diynyl]benzamide
931N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-{[({[4-(methyloxy)phenyl]methyl}amino)acetyl]amino}-540.6
phenyl)buta-1,3-diynyl]benzamide
932N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[4-({[(2-fluorophenyl)amino]acetyl}amino)phenyl]buta-1,3-514.5
diynyl}benzamide
933N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[4-({[(3-fluorophenyl)amino]acetyl}amino)phenyl]buta-1,3-514.5
diynyl}benzamide
934N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[4-({[(4-fluorophenyl)amino]acetyl}amino)phenyl]buta-1,3-514.5
diynyl}benzamide
935N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-{[(pyridin-2-ylamino)acetyl]amino}phenyl)buta-1,3-diynyl]benzamide497.5
936N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-{[(pyridin-3-ylamino)acetyl]amino}phenyl)buta-1,3-diynyl]benzamide497.5
937N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-{[(pyridin-4-ylamino)acetyl]amino}phenyl)buta-1,3-diynyl]benzamide497.5
938N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-{[(cyclobutylamino)acetyl]amino}phenyl)buta-1,3-diynyl]benzamide474.5
939N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-{[(cyclopentylamino)acetyl]amino}phenyl)buta-1,3-diynyl]benzamide488.6
940N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-{[(cyclohexylamino)acetyl]amino}phenyl)buta-1,3-diynyl]benzamide502.6
941N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-{[(cycloheptylamino)acetyl]amino}phenyl)buta-1,3-diynyl]benzamide516.6
942N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-{[(methylamino)acetyl]amino}phenyl)buta-1,3-diynyl]benzamide434.5
943N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-{[(propylamino)acetyl]amino}phenyl)buta-1,3-diynyl]benzamide462.5
944N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-{[(butylamino)acetyl]amino}phenyl)buta-1,3-diynyl]benzamide476.5
945N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-{[(pentylamino)acetyl]amino}phenyl)buta-1,3-diynyl]benzamide490.6
946N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-{[(hexylamino)acetyl]amino}phenyl)buta-1,3-diynyl]benzamide504.6
947N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[4-({[ethyl(methyl)amino]acetyl}amino)phenyl]buta-462.5
1,3-diynyl}benzamide
948N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[4-({[(1-methylethyl)amino]acetyl}amino)phenyl]buta-462.5
1,3-diynyl}benzamide
949N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[4-({[(2-methylpropyl)amino]acetyl}amino)phenyl[buta-476.5
1,3-diynyl}benzamide
950N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[4-({[(2-hydroxyethyl)amino]acetyl}amino)phenyl]buta-464.5
1,3-diynyl}benzamide
951N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-{4-[({[2-(methyloxy)ethyl]amino}acetyl)amino]phenyl}buta-478.5
1,3-diynyl)benzamide
952N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-{4-[({[2-(dimethylamino)ethyl]amino}acetyl)amino]phenyl}buta-491.6
1,3-diynyl)benzamide
953N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[4-({[(2-cyanoethyl)amino]acetyl}amino)phenyl]buta-473.5
1,3-diynyl}benzamide
954N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[4-({[(thien-2-ylmethyl)amino]acetyl}amino)phenyl]buta-516.6
1,3-diynyl}benzamide
955N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-{4-[({[(1R)-1-phenylethyl]amino}acetyl)amino]phenyl}buta-524.6
1,3-diynyl)benzamide
956N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-{4-[({[(1S)-1-phenylethyl]amino}acetyl)amino]phenyl}buta-524.6
1,3-diynyl)benzamide
957N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[4-({[(2-phenylethyl)amino]acetyl}amino)phenyl]buta-524.6
1,3-diynyl}benzamide
958N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-{4-[(1H-imidazol-1-ylacetyl)amino]phenyl}buta-1,3-diynyl)benzamide471.5
959N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[4-({[(1R,2R,4S)-bicyclo[2.2.1]hept-2-ylamino]acetyl}-514.6
amino)phenyl]buta-1,3-diynyl}benzamide
960N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[4-({[(cyclohexylmethyl)amino]acetyl}-516.6
amino)phenyl]buta-1,3-diynyl}benzamide
961N-{(1S,2r)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(6-piperidin-1-ylpyridin-3-yl)ethynyl]benzamide423.5
962N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[6-(4-methylpiperazin-1-yl)-pyridin-3-yl]ethynyl}benzamide438.5
963N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]phenyl}-4-[(6-piperazin-1-ylpyridin-3-yl)ethynyl]benzamide424.5
9644-[(6-azepan-1-ylpyridin-3-yl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide437.5
9654-{[6-(cyclobutylamino)pyridin-3-yl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide409.5
9664-{[6-(cyclohexylamino)pyridin-3-yl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide437.5
9674-{[6-(butyalmino)pyridin-3-ylethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide411.5
9684-({6-{[2-hydroxyethyl)amino]pyridin-3-yl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide399.4
9694-[(6-{[2-(dimethylamino)ethyl]amino}pyridin-3-yl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide426.5
970N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({6-[(phenylmethyl)amino]pyridin-3-yl}ethynyl)benzamide445.5
9714-[(6-{[(4-fluorophenyl)methyl]amino}pyridin-3-yl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide463.5
972N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[6-(pyridin-4-ylamino)pyridin-3-yl]ethynyl}benzamide432.4
9734-[(6-chloropyridin-3-yl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide374.8
9741,1-dimethylethyl (2S)-2-[({4-[(4-ethylphenyl)ethynyl]phenyl}carbonyl)amino]-3-(hydroxyamino)-3-oxopropylcarbamate452.5
975N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[4-({[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-493.5
oxoethyl]amino}carbonyl)phenyl]buta-1,3-diynyl}benzamide
976N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-(morpholin-4-ylmethyl)phenyl]ethynyl}benzamide438.5
9774-[(4-{[(2-aminoethyl)amino]methyl}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide411.5
9784-({4-[((2S)-2-amino-5-{[amino(imino)methyl]amino}pentanoyl)amino]phenyl}ethynyl)-N-[(1S)-1-(aminomethyl)-2-495.6
(hydroxyamino)-2-oxoethyl]benzamide
979(2S)-6-amino-2-({[4-({4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}ethynyl)-511.5
phenyl]carbonyl}amino)hexanoic acid
980(2S)-6-amino-2-({[4-({4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}ethynyl)-525.6
phenyl]acetyl}amino)hexanoic acid
9815-{[(2S)-3-(hydroxyamino)-3-oxo-2-({[4-(phenylethynyl)phenyl]carbonyl}amino)propyl]amino}-5-oxopentanoic acid438.4
982N-(2-aminoethyl)-N′-[(2S)-3-(hydroxyamino)-3-oxo-2-({[4-(phenylethynyl)phenyl]carbonyl}amino)propyl]pentanediamide480.5
983N-[(1S)-1-[(2,6-dioxopiperidin-1-yl)methyl]-2-(hydroxyamino)-2-oxoethyl]-4-(phenylethynyl)benzamide420.4
984N,N′-bis[(2S)-3-(hydroxyamino)-3-oxo-2-({[4-(phenylethynyl)phenyl]carbonyl}amino)propyl]pentanediamide743.8
985N-{(1S)-2-(hydroxyamino)-2-oxo-1-{[({[(1S)-1-phenylethyl]amino}acetyl)amino]methyl}ethyl)-4-(phenylethynyl)benzamide485.6
986N-{(1S)-2-hydroxy-1-[(hydroxyamino)carbonyl]-2-methylpropyl}-4-(phenylethynyl)benzamide353.4
987N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(6-piperidin-1-ylpyridin-3-yl)ethynyl]benzamide408.5
988N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(6-morpholin-4-ylpyridin-3-yl)ethynyl]benzamide410.4
989N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[6-(4-methylpiperazin-1-yl)pyridin-3-yl]ethynyl}benzamide423.5
990N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(6-piperazin-1-ylpyridin-3-yl)ethynyl]benzamide409.5
991N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(6-azepan-1-ylpyridin-3-yl)ethynyl]benzamide422.5
992N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[6-(cyclobutylamino)pyridin-3-yl]ethynyl}benzamide394.4
993N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[6-(cyclohexylamino)pyridin-3-yl]ethynyl}benzamide422.5
994N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[6-(butylamino)pyridin-3-yl]ethynyl}benzamide396.5
995N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(6-{[2-(methyloxy)ethyl]amino}pyridin-3-yl)ethynyl]benzamide398.4
996N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-(piperidin-1-ylmethyl)phenyl]ethynyl}benzamide436.5
9974-[(4-{[(2S)-2-amino-3-(4-aminophenyl)propanoyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-516.6
carbonyl]propyl}benzamide
9984-((2S)-2-amino-3-{[4-({4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}ethynyl)-545.6
phenyl]amino}-3-oxopropyl)benzoic acid
999573.6
1000N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[({[1-(hydroxymethyl)-2-methylpropyl]amino}acetyl)-497.6
amino]phenyl}ethynyl)benzamide
10014-[4-(3-aminophenyl)buta-1,3-diynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide378.4
10024-[4-(3-{[(2-aminoethyl)amino]methyl}phenyl)buta-1,3-diynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide435.5
10035-[(4-{[4-({[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]amino}carbonyl)phenyl]ethynyl}phenyl)amino]-5-oxopentanoic acid453.5
1004N-(2-aminomethyl)-3-{4-[4-({[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]amino}carbonyl)phenyl]buta-1,3-diynyl}benzamide434.5
1005N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[3-(aminomethyl)phenyl]buta-1,3-diynyl}benzamide377.4
1006N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[3-(trifluoromethyl)phenyl]buta-1,3-diynyl}benzamide416.4
1007N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-buta-1,3-diynylbenzamide272.3
1008N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(2-methylphenyl)buta-1,3-diynyl]benzamide362.4
10094-(4-{4-[(3-aminopropanoyl)amino]phenyl}buta-1,3-diynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide449.5
10104-[4-(3-{[(aminoacetyl)amino]methyl}phenyl)buta-1,3-diynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide449.5
10114-(4-{3-[(aminoacetyl)amino]phenyl}buta-1,3-diynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide435.4
10124-[4-(4-{[(2S)-2-aminopropanoyl]amino}phenyl)buta-1,3-diynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide449.5
10134-(4-{4-[(aminoacetyl)amino]phenyl}buta-1,3-diynyl)-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]benzamide420.4
10144-[4-(3-{[(aminoacetyl)amino]methyl}phenyl)buta-1,3-diynyl]-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]benzamide434.5
1015N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-{4-[(3-aminopropanoyl)amino]phenyl}buta-1,3-diynyl)benzamide434.5
10164-(4-{3-[(aminoacetyl)amino]phenyl}buta-1,3-diynyl)-N-[(1S)-2-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]benzamide420.4
10174-[(4-{[(2S)-2-amino-3-(4-hydroxyphenyl)propanoyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-517.6
carbonyl]propyl}benzamide
10184-(4-{4-[(aminoacetyl)amino]phenyl}buta-1,3-diynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide435.4
1019N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(butylamino)methyl]phenyl}ethynyl)benzamide409.5
1020N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-(piperidin-1-ylmethyl)phenyl]ethynyl}benzamide421.5
1021N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-formylphenyl)ethynyl]benzamide352.4
1022N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[(methylsulfonyl)amino]phenyl}ethynyl)benzamide432.5
1023N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(methylsulfonyl)amino]phenyl}ethynyl)benzamide417.5
1024N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(phenylsulfonyl)amino]phenyl}ethynyl)benzamide479.5
1025N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-{4-[(phenylsulfonyl)amino]phenyl}buta-1,3-diynyl)benzamide503.5
1026N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-(morpholin-4-ylmethyl)phenyl]ethynyl}benzamide423.5
1027N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(4-methylpiperazin-1-yl)methyl]phenyl}ethynyl)benzamide436.5
1028N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(2-hydroxyethyl)amino]methyl}phenyl)ethynyl]benzamide397.4
1029N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[2-(methyloxy)ethyl]amino}methyl)phenyl]ethynyl}benzamide411.5
1030N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(cyclohexylamino)methyl]phenyl}ethynyl)benzamide435.5
1031N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(phenylmethyl)amino]methyl}phenyl)ethynyl]benzamide443.5
1032N[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(6-chloropyridin-3-yl)ethynyl]benzamide359.8
1033N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propy}-4-(4-{4-[({[6-(methyloxy)pyridin-3-yl]amino}acetyl)-542.6
amino]phenyl}buta-1,3-diynyl)benzamide
10344-{4-[4-({[(6-chloropyridin-3-yl)amino]acetyl}amino)phenyl]buta-1,3-diynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-547.0
carbonyl]propyl}benzamide
1035N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-(pyrrolidin-1-ylmethyl)phenyl]ethynyl}benzamide422.5
10364-({4-[(ethylamino)methyl]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide396.5
10374-({4-[(dimethylamino)methyl]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide396.5
1038N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[(4-methylpiperazin-1-yl)methyl]phenyl}ethynyl)benzamide451.5
1039N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[3-(1H-imidazol-1-yl)propyl]amino}methyl)-476.5
phenyl]ethynyl}benzamide
1040N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-thien-2-ylbuta-1,3-diynyl)benzamide354.4
1041N,N,N-triethyl-2-{[4-(4-{4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}buta-520.6
1,3-diynyl)phenyl]amino}-2-oxoethanaminium
10424-[4-(2-aminophenyl)buta-1,3-diynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide378.4
10434-[4-(3-{[(2-aminoethyl)amino]methyl}phenyl)buta-1,3-diynyl]-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]benzamide420.5
10444-buta-1,3-diynyl-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide287.3
10454-[4-(4-{[(2S)-2-amino-4-methylpentanoyl]amino}phenyl)buta-1,3-diynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-491.6
carbonyl]propyl}benzamide
1046(2S)-N-[4-(4-{4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}buta-1,3-diynyl)-475.5
phenyl]pyrrolidine-2-carboxamide
1047(2S)-N-[4-(4-{4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}buta-1,3-diynyl)-489.5
phenyl]piperidine-2-carboxamide
10484-[4-(4-{[(2S)-2,3-diaminopropanoyl]amino}phenyl)buta-1,3-diynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-464.5
carbonyl]propyl}benzamide
10494-[4-(4-{[(2S)-2-amino-3-(1H-imidazol-4-yl)propanoyl]amino}phenyl)buta-1,3-diynyl]-N-{(1S,2R)-2-hydroxy-1-515.5
[(hydroxyamino)carbonyl]propyl}benzamide
1050N-[1-[(hydroxyamino)carbonyl]-2-(propylamino)propyl]-4-[(4-{[(propylamino)acetyl]amino}phenyl)ethynyl]benzamide494.6
10514-[(4-{[(cyclobutylamino)acetyl]amino}phenyl)ethynyl]-N-{2-(cyclobutylamino)-1-[(hydroxyamino)carbonyl]propyl}benzamide518.6
1052N-{(1S,2R)-2-amino-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(cyclopropylamino)acetyl]amino}phenyl)ethynyl]benzamide450.5
10531-[(1S,2R)-2-[({4-[(4-{[(cyclopropylamino)acetyl]amino}phenyl)ethynyl]phenyl}carbonyl)amino]-3-(hydroxyamino)-477.5
1-methyl-3-oxopropyl]triaza-1,2-dien-2-ium
1054N-{(1S,2R)-2-amino-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[({[(4-fluorophenyl)methyl]amino}acetyl)amino]phenyl}-518.6
ethynyl)benzamide
1055N-{(1S,2R)-2-amino-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[({[(3-fluorophenyl)methyl]amino}acetyl)amino]phenyl}-518.6
ethynyl)benzamide
1056N-{(1S,2R)-2-amino-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(propylamino)acetyl]amino}phenyl)ethynyl]benzamide452.5
1057N-{(1S,2R)-2-amino-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(phenylmethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide500.6
10581-((1R,2S)-3-(hydroxyamino)-1-methyl-3-oxo-2-{[(4-{[4-({[(phenylmethyl)amino]acetyl}amino)phenyl]ethynyl}phenyl)-527.6
carbonyl]amino}propyl)triaza-1,2-dien-2-ium
1059N-{(1S,2R)-2-amino-1-[(hydroxyamino)carbonyl]propyl}-5-[(4-{[(cyclobutylamino)acetyl]amino}phenyl)ethynyl]benzamide464.5
10601-[(1R,2S)-2-[({4-[(4-{[(cyclobutylamino)acetyl]amino}phenyl)ethynyl]phenyl}carbonyl)amino]-3-(hydroxyamino)-491.5
1-methyl-2-oxopropyl]triaza-1,2-dien-2-ium
10614-[(4-ethylphenyl)ethynyl]-N-{(1S)-1-[(hydroxyamino)carbonyl]-2-methylpropyl}benzamide365.4
10624-(4-{4-[(ethylamino)methyl]phenyl}buta-1,3-diynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide420.5
1063N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(3-aminophenyl)buta-1,3-diynyl]benzamide363.4
10644-(4-{3-[(4-aminobutanoyl)amino]phenyl}buta-1,3-diynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide463.5
1065N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[4-(3-hydroxyphenyl)buta-1,3-diynyl]benzamide379.4
10664-(4-{2-[(aminoacetyl)amino]phenyl}buta-1,3-diynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide435.4
1067N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[2,4-bis(methyloxy)pyrimidin-5-yl]buta-1,3-diynyl}benzamide410.4
1068(2S)-6-amino-2-{[(4-{4-[4-({[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]amino}carbonyl)phenyl]buta-1,3-520.6
diynyl}phenyl)carbonyl]amino}hexanoic acid
1069N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(2-aminophenyl)buta-1,3-diynyl]benzamide363.4
10704-[4-(4-{2-[(2-aminoethyl)amino]-2-oxoethyl}phenyl)buta-1,3-diynyl]-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-448.5
2-oxoethyl}benzamide
1071N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(2-aminopyrimidin-5-yl)buta-1,3-diynyl]benzamide365.4
10724-(4-{3-[(4-aminobutanoyl)amino]phenyl}buta-1,3-diynyl)-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]benzamide448.5
10734-(4-{2-[(aminoacetyl)amino]phenyl}buta-1,3-diynyl)-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]benzamide420.4
10744-[4-(4-{2-[(2-aminoethyl)amino]-2-oxoethyl}phenyl)buta-1,3-diynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-463.5
carbonyl]propyl}benzamide
10754-[4-(4-{[(2,3-dihydroxypropyl)amino]methyl}phenyl)buta-1,3-diynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-466.5
carbonyl]propyl}benzamide
1076N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(4-{4-[({[2-(methyloxy)phenyl]methyl}amino)-512.6
methyl]phenyl}buta-1,3-diynyl)benzamide
1077N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(4-{4-[(pyridin-2-ylamino)methyl]phenyl}buta-1,3-diynyl)benzamide469.5
10784-[4-(4-{[(2-aminoethyl)amino]methyl}phenyl)buta-1,3-diynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide435.5
10794-[(4-ethylphenyl)ethynyl]-N-[(1R)-1-[(ethylthio)methyl]-2-(hydroxyamino)-2-oxoethyl]benzamide397.5
10804-[(4-{[(2S)-2-aminopropanoyl]amino}phenyl)ethynyl]-N-[(1R)-1-[(ethylthio)methyl]-2-(hydroxyamino)-2-oxoethyl]benzamide455.5
1081N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(3-chlorophenyl)buta-1,3-diynyl]benzamide382.8
1082N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[3-(methyloxy)phenyl]buta-1,3-diynyl}benzamide378.4
1083N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(4-{4-[(methylsulfonyl)amino]phenyl}buta-1,3-diynyl)benzamide456.5
1084N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(4-{3-[(methylsulfonyl)amino]phenyl}buta-1,3-diynyl)benzamide456.5
1085N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-(4-pyrazin-2-ylbuta-1,3-diynyl)benzamide350.3
1086N-[(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[4-(3-nitrophenyl)buta-1,3-diynyl]benzamide408.4
1087N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(3-{[(methylsulfonyl)amino]methyl}phenyl)ethynyl]benzamide446.5
10884-[(2-formylphenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide367.4
1089N-{(1R,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(3-{[(methylsulfonyl)amino]methyl}phenyl)ethynyl]benzamide446.5
10904-({2-[(aminoacetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide411.4
1091N-{(1S)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{4-[3-(morpholin-4-ylmethyl)phenyl]buta-1,3-diynyl}benzamide462.5
1092N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(methylamino)methyl]phenyl}ethynyl)benzamide367.4
1093N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(ethylamino)methyl]phenyl}ethynyl)benzamide381.4
1094N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(propylamino)methyl]phenyl}ethynyl)benzamide395.5
1095N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(pentylamino)methyl]phenyl}ethynyl)benzamide423.5
1096N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(hexylamino)methyl]phenyl}ethynyl)benzamide437.6
1097N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(1-methylethyl)amino]methyl}phenyl)ethynyl]benzamide395.5
1098N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(2-methylpropyl)amino]methyl}phenyl)ethynyl]benzamide409.5
1099N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(1,1-dimethylethyl)amino]methyl}phenyl)ethynyl]benzamide409.5
1100N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(dimethylamino)methyl]phenyl}ethynyl)benzamide381.4
1101N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[ethyl(methyl)amino]methyl}phenyl)ethynyl]benzamide395.5
1102N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[2-(dimethylamino)ethyl]amino}methyl)phenyl]ethynyl}benzamide424.5
1103N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[4-(dimethylamino)butyl]amino}methyl)phenyl]ethynyl}benzamide452.6
1104N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(2-cyanoethyl)amino]methyl}phenyl)ethynyl]benzamide406.5
11054-{[4-({[2-(acetylamino)ethyl]amino}methyl)phenyl]ethynyl}-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]benzamide438.5
11064-[(4-{[(2-aminomethyl)amino]methyl}phenyl)ethynyl]-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]benzamide396.5
1107N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(3-hydroxypropyl)amino]methyl}phenyl)ethynyl]benzamide411.5
1108N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[3-(methyloxy)propyl]amino}methyl)phenyl]ethynyl}benzamide425.5
1109N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({methyl[2-(methyloxy)ethyl]amino}methyl)phenyl]ethynyl}benzamide425.5
1110N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[3-(2-oxopyrrolidin-1-yl)propyl]amino}methyl)-478.6
phenyl]ethynyl}benzamide
1111N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoehtyl]-4-[(4-{[(3-morpholin-4-ylpropyl)amino]methyl}phenyl)ethynyl]benzamide480.6
1112N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(cyclopropylamino)methyl]phenyl}ethynyl)benzamide393.5
1113N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(cyclopropylamino)methyl]phenyl}ethynyl)benzamide407.5
1114N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(cyclopentylamino)methyl]phenyl}ethynyl)benzamide421.5
1115N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(cycloheptylamino)methyl]phenyl}ethynyl)benzamide449.6
1116N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(cycloctylamino)methyl]phenyl}ethynyl)benzamide463.6
1117N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-(pyrrolidin-1-ylmethyl)phenyl]ethynyl}benzamide407.5
1118N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoehtyl]-4-{[4-(azepan-1-ylmethyl)phenyl]ethynyl}benzamide435.5
1119N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(3R)-3-(dimethylamino)pyrrolidin-1-yl]methyl}phenyl)-450.6
ethynyl]benzamide
1120N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(3S)-3-(dimethylamino)pyrrolidin-1-yl]methyl}phenyl)-450.6
ethynyl]benzamide
11214-[(4-{[(3R)-2-(acetylamino)pyrrolidin-1-yl]methyl}phenyl)ethynyl]-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-464.5
oxoethyl]benzamide
11224-[(4-{[(3S)-3-(acetylamino)pyrrolidin-1-yl]methyl}phenyl)ethynyl]-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]benzamide464.5
1123N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-(1,4′-bipiperidin-1′-ylmethyl)phenyl]ethynyl}benzamide504.6
1124N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(cyclohexylmethyl)amino]methyl}phenyl)ethynyl]benzamide449.6
1125N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[cyclohexyl(methyl)amino]methyl}phenyl)ethynyl]benzamide449.6
1126N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(1R)-1-phenylethyl)amino}methyl)phenyl]ethynyl}benzamide457.5
1127N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(1S)-1-phenylethyl]amino}methyl)phenyl]ethynyl}benzamide457.5
1128N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(thien-2-ylmethyl)amino]methyl}phenyl)ethynyl]benzamide449.5
1129N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(2-phenylethyl)amino]methyl}phenyl)ethynyl]benzamide457.5
1130N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoehtyl]-4-({4-[(piperidin-3-ylamino)methyl]phenyl}ethynyl)benzamide436.5
1131N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(piperidin-4-ylamino)methyl]phenyl}ethynyl)benzamide436.5
1132N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(piperidin-2-ylmethyl)amino]methyl}phenyl)ethynyl]benzamide450.6
1133N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(piuperidin-3-ylmethyl)amino]methyl}phenyl)ethynyl]benzamide450.6
1134N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(2R)-pyrrolidin-2-ylmethyl]amino}methyl)phenyl]ethynyl}benzamide436.5
1135N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(2S)-pyrrolidin-2-ylmethyl]amino}methyl)phenyl]ethynyl}benzamide436.5
1136N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(pyrrolidin-3-ylamino)methyl]phenyl}ethynyl)benzamide422.5
1137N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(2-fluorophenyl)methyl]amino}methyl)phenyl]ethynyl}benzamide461.5
1138N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(3-fluorophenyl)methyl]amino}methyl)phenyl]ethynyl}benzamide461.5
1139N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoehtyl]-4-{[4-({[(4-fluorophenyl)methyl]amino}methyl)phenyl]ethynyl}benzamide461.5
1140N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoehtyl]-4-{[4-({[(2-methylphenyl)methyl]amino}methyl)phenyl]ethynyl}benzamide457.5
1141N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(3-methylphenyl)methyl]amino}methyl)phenyl]ethynyl}benzamide457.5
1142N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(4-methylphenyl)methyl]amino}methyl)phenyl]ethynyl}benzamide457.5
1143N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[2-(methyloxy)phenyl]methyl}amino)methyl]phenyl}-473.5
ethynyl)benzamide
1144N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[3-(methyloxy)phenyl]methyl}amino)methyl]phenyl}-473.5
ethynyl)benzamide
1145N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[4-(methyloxy)phenyl]methyl}amino)methyl]phenyl}-473.5
ethynyl)benzamide
1146N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(phenylamino)methyl]phenyl}ethynyl)benzamide429.5
1147N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(pyridin-3-ylmethyl)amino]methyl}phenyl)ethynyl]benzamide444.5
1148N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(4-phenylpiperidin-1-yl)methyl]phenyl}ethynyl)benzamide497.6
1149N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(4-phenylpiperazin-1-yl)methyl]phenyl}ethynyl)benzamide498.6
1150N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(1R,2R,4S)-bicyclo[2.2.1]hept-2-ylamino]methyl}-447.5
phenyl)ethynyl]benzamide
1151N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({[(1S,2R,5S)-6,6-dimethylbicyclo[3.1.1]hept-2-yl]methyl}-489.6
amino)methyl]phenyl}ethynyl)benzamide
1152N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(1S,4R)-2bicyclo[2.2.1]hept-2-ylamino]methyl}-447.5
phenyl)ethynyl]benzamide
1153N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[(1S,2S,3S,5R)-2,6,6-trimethylbicyclo[3.1.1]hept-3-489.6
yl]amino}methyl)phenyl]ethynyl}benzamide
11541-((1R,2S)-3-(hydroxyamino)-1-methyl-3-oxo-2-{[(4-{[4-({[(pyridin-4-ylmethyl)amino]acetyl}amino)phenyl]ethynyl}-528.6
phenyl)carbonyl]amino}propyl)triaza-1,2-dien-2-ium
11551-((1R,2S)-3-(hydroxyamino)-1-methyl-3-oxo-2-{[(4-{[4-({[(pyridin-3-ylmethyl)amino]acetyl}amino)phenyl]ethynyl}-528.6
phenyl)carbonyl]amino}propyl)triaza-1,2-dien-2-ium
1156N-{(1S,2R)-2-amino-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(pyridin-4-ylmethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide501.6
1157N-{(1S,2R)-2-amino-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(pyridin-3-ylmethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide501.6
1158N-[1-[(hydroxyamino)carbonyl]-2-(methylamino)propyl}-4-{[4-({[(phenylmethyl)amino]acetyl}amino)phenyl]ethynyl}benzamide514.6
11594-[(4-{[(cyclobutylamino)acetyl]amino}phenyl)ethynyl]-N-[1-[(hydroxyamino)carbonyl]-2-(methylamino)propyl]benzamide478.6
11604-[(4-{[(2S)-2-aminopropanoyl]amino}phenyl)ethynyl]-N-[(1R)-1-{[ethyl(hydroxy)-lambda-4-~sulfanyl]methyl}-2-473.6
(hydroxyamino)-2-oxoethyl]benzamide
11614-[(4-ethylphenyl)ethynyl]-N-hydroxybenzamide266.3
1162N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(2,4-difluorophenyl)buta-1,3-diynyl]benzamide384.4
1163N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(2-aminophenyl)ethynyl]benzamide339.4
1164N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(3-{[(methylsulfonyl)amino]methyl}phenyl)buta-1,3-diynyl]benzamide455.5
1165N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(3-{[(methylsulfonyl)amino]methyl}phenyl)buta-1,3-diynyl]benzamide455.5
1166N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({3-[(methylsulfonyl)amino]phenyl}ethynyl)benzamide417.5
11674-[(4-{[(2S)-2-aminopropanoyl]amino}phenyl)ethynyl]-N-hydroxybenzamide324.4
11684-[(2-{[(2-aminoethyl)amino]methyl}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide411.5
1169N-{(1S,2R)-2-amino-1-[(hydroxyamino)carbonyl]propyl}-4-(phenylethynyl)benzamide338.4
1170N-{(1S,2R)-2-amino-1-[(hydroxyamino)carbonyl]propyl}-4-[4-(4-aminophenyl)buta-1,3-diynyl]benzamide377.4
1171N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(3-hydroxyphenyl)buta-1,3-diynyl]benzamide364.4
1172N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[3-(morpholin-4-ylmethyl)phenyl]buta-1,3-diynyl}benzamide447.5
1173N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[({[2-(methyloxy)phenyl]methyl}amino)methyl]phenyl}-488.6
ethynyl)benzamide
11744-[(4-{[(2,3-dihydroxypropyl)amino]methyl}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide442.5
11754-({2-[(dimethylamino)methyl]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide396.5
1176N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[(methylamino)methyl]phenyl}ethynyl)benzamide382.4
1177N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[(propylamino)methyl]phenyl}ethynyl)benzamide410.5
11784-({4-[(butylamino)methyl]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide424.5
1179N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[(pentaylamino)methyl]phenyl}ethynyl)benzamide438.5
11804-({4-[(hexylamino)methyl]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide452.6
1181N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(1-methylethyl)amino]methyl}phenyl)ethynyl]benzamide410.5
1182N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(2-methylpropyl)amino]methyl}phenyl)ethynyl]benzamide424.5
11834-[(4-{[(1,1-dimethylethyl)amino]methyl}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide424.5
11844-[(4-{[ethyl(methyl)amino]methyl}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide410.5
11854-{[4-({[2-(dimethylamino)ethyl]amino}methyl)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide439.5
11864-{[4-({[4-(dimethylamino)butyl]amino}methyl)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide467.6
11874-[(4-{[(2-hydroxyethyl)amino]methyl}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide412.5
1188N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(3-hydroxypropyl)amino]methyl}phenyl)ethynyl]benzamide426.5
1189N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({methyl[2-(methyloxy)ethyl]amino}methyl)-440.5
phenyl]ethynyl}benzamide
1190N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[2-(methyloxy)ethyl]amino}methyl)phenyl]ethynyl}benzamide426.5
1191N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[3-(methyloxy)propyl]amino}methyl)phenyl]ethynyl}benzamide440.5
11924-[(4-{[(2-cyanoethyl)amino]methyl}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide421.5
11934-{[4-({[2-(acetylamino)ethyl]amino}methyl)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide453.5
1194N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[3-(2-oxopyrrolidin-1-yl)propyl}amino}-493.6
methyl)phenyl]ethynyl}benzamide
1195N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-({[3-morpholin-4-ylpropyl)amino]methyl}phenyl)ethynyl]benzamide495.6
11964-({4-[(cyclopropylamino)methyl]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide408.5
11974-({4-[(cyclobutylamino)methyl]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide422.5
11984-({4-[(cyclopentylamino)methyl]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide436.5
11994-({4-[(cyclohexylamino)methyl]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-benzamide450.5
12004-({4-[(cycloheptylamino)methyl]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide464.6
12014-({4-[(cycloctylamino)methyl]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide478.6
12024-{[4-(azepan-1-ylmethyl)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide450.5
12034-[(4-{[(3R)-3-(dimethylamino)pyrrolidin-1-yl]methyl}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-465.6
carbonyl]propyl}benzamide
12044-[(4-{[(3S)-3-(dimethylamino)pyrrolidin-1-yl]methyl}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-465.6
carbonyl]propyl}benzamide
12054-[(4-{[(3R)-3-(acetylamino)pyrrolidin-1-yl]methyl}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-479.5
carbonyl]propyl}benzamide
12064-[(4-{[(3S)-3-(acetylamino)pyrrolidin-1-yl]methyl}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-479.5
carbonyl]propyl}benzamide
12074-{[4-(1,4′-bipiperidin-1′-ylmethyl)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide519.7
12084-[(4-{[(cyclohexylmethyl)amino]methyl}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide464.6
1209N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[(4-phenylpiperazin-1-yl)methyl]phenyl}ethynyl)benzamide513.6
1210N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(2-phenylethyl)amino]methyl}phenyl)ethynyl]benzamide472.6
1211N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(1R)-1-phenylethyl]amino}methyl)phenyl]ethynyl}benzamide472.6
1212N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(1S)-1-phenylethyl]amino}methyl)phenyl]ethynyl}benzamide472.6
1213N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(thien-2-ylmethyl)amino]methyl}phenyl)ethynyl]benzamide464.6
1214N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[(piperidin-3-ylamino)methyl]phenyl}ethynyl)benzamide451.5
1215N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[(piperidin-4-ylamino)methyl]phenyl}ethynyl)benzamide451.5
1216N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(piperidin-2-ylmethyl)amino]methyl}phenyl)ethynyl]benzamide465.6
1217N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(piperidin-3-ylmethyl)amino]methyl}phenyl)ethynyl]benzamide465.6
1218N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(2R)-pyrrolidin-2-ylmethyl]amino}methyl)-451.5
phenyl]ethynyl}benzamide
1219N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(2S)-pyrrolidin-2-ylmethyl]amino}methyl)-451.5
phenyl]ethynyl}benzamide
1220N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[(pyrrolidin-3-ylamino)methyl]phenyl}ethynyl)benzamide437.5
12214-{[4-({[(2-fluorophenyl)methyl]amino}methyl)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide476.5
12224-{[4-({[(3-fluorophenyl)methyl]amino}methyl)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide476.5
12234-{[4-({[(4-fluorophenyl)methyl]amino}methyl)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide476.5
1224N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(2-methylphenyl)methyl]amino}methyl)-472.6
phenyl]ethynyl}benzamide
1225N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(3-methylphenyl)methyl]amino}methyl)-472.6
phenyl]ethynyl}benzamide
1226N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[(4-methylphenyl)methyl]amino}methyl)-472.6
phenyl]ethynyl}benzamide
1227N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(phenylmethyl)amino]methyl}phenyl)ethynyl]benzamide458.5
1228N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[(phenylamino)methyl]phenyl}ethynyl)benzamide444.5
1229N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-[(4-{[(pyridin-3-ylmethyl)amino]methyl}phenyl)ethynyl]benzamide459.5
12304-[(4-{[(1R,2R,4S)-bicyclo[2.2.1]hept-2-ylamino]methyl}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-462.6
carbonyl]propyl}benzamide
1231(3R)-N-hydroxy-3-({[4-(phenylethynyl)phenyl]carbonyl}amino)piperidine-3-carboxamide364.4
12324-({[4-(phenylethynyl)phenyl]carbonyl}amino)piperidin3-4-carboxylic acid349.4
1233N-{(1S)-2-(hydroxyamino)-2-oxo-1-[(2S)-pyrrolidin-2-ylmethyl]ethyl}-4-(phenylethynyl)benzamide378.4
1234(3R)-3-{[(4′-ethyl-1,1′-biphenyl-4-yl)carbonyl]amino}-N-hydroxypiperidine-3-carboxamide368.4
12351,1-dimethylethyl-3-(4-{4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}buta-1,3-478.5
diynyl)phenylcarbamate
12364-[4-(3-amino-4-methylphenyl)buta-1,3-diynyl]-N-[(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide392.4
1237N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(3-amino-4-methylphenyl)buta-1,3-diynyl]benzamide377.4
12384-(4-{4-[(aminoacetyl)amino]-3-methylphenyl}buta-1,3-diynyl)-N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]benzamide434.5
1239N-{(1S,2R)-2-amino-1-[(hydroxyamino)carbonyl]propyl}-4-(2-phenylethenyl)benzamide340.4
1240N-[(2R)-2-amino-3-(hydroxyamino)-3-oxopropyl]-4′-ethyl-1,1′-biphenyl-4-carboxamide328.4
1241N-[(2R)-2-amino-3-(hydroxyamino)-3-oxopropyl]-4-(phenylethynyl)benzamide324.4
1242N-[(2R)-2-amino-3-(hydroxyamino)-3-oxopropyl]-4-(4-chlorophenyl)cyclohexanecarboxamide340.8
1243N-[(2S)-2-amino-3-(hydroxyamino)-3-oxopropyl]-4-(4-chlorophenyl)cyclohexanecarboxamide340.8
1244N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[2-(4-methylphenyl)ethyl]benzamide342.4
1245N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-aminophenyl)butyl]benzamide371.4
1246N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[methyl(pyridin-2-ylmethyl)amino]acetyl}amino)-516.6
phenyl]ethynyl}benzamide
12474-{[4-({[[(2-fluorophenyl)methyl](methyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-533.6
carbonyl]propyl}benzamide
12484-{[4-({[[(3-fluorophenyl)methyl](methyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-533.6
carbonyl]propyl}benzamide
12494-{[4-({[[(4-fluorophenyl)methyl](methyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-533.6
carbonyl]propyl}benzamide
1250N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[[(2-fluorophenyl)methyl](methyl)amino]acetyl}amino)-518.6
phenyl]ethynyl}benzamide
1251N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[[(3-fluorophenyl)methyl](methyl)amino]acetyl}-518.6
amino)phenyl]ethynyl}benzamide
1252N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[[(4-fluorophenyl)methyl](methyl)amino]acetyl}-518.6
amino)phenyl]ethynyl}benzamide
1253N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[{(methyl[(2-methylphenyl)methyl]amino}acetyl)-514.6
amino]phenyl}ethynyl)benzamide
1254N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[({methyl[(4-methylphenyl)methyl]amino}acetyl)-514.6
amino]phenyl}ethynyl)benzamide
1255N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[methyl(phenylmethyl)amino]acetyl}-500.6
amino)phenyl]ethynyl}benzamide
1256N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[methyl(propyl)amino]acetyl}amino)phenyl]ethynyl}benzamide467.5
12574-{[4-({[butyl(methyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide481.6
1258N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[methyl(pentyl)amino]acetyl}amino)phenyl]ethynyl}benzamide495.6
12594-{[4-({[hexyl(methyl)amino]acetyl}amino)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide509.6
1260N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[methyl(1-methylethyl)amino]acetyl}amino)-467.5
phenyl]ethynyl}benzamide
1261N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-({[methyl(2-methylpropyl)amino]acetyl}amino)-481.6
phenyl]ethynyl}benzamide
1262N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[({methyl[(2-methylphenyl)methyl]amino}acetyl)-529.6
amino]phenyl}ethynyl)benzamide
1263N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-({4-[({methyl[(4-methylphenyl]methyl]amino}acetyl)amino]phenyl}ethynyl)benzamide529.6
1264N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[methyl(propyl)amino]acetyl}amino)phenyl]ethynyl}benzamide452.5
1265N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[butyl(methyl)amino]acetyl}amino)phenyl]ethynyl}benzamide466.6
1266N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[methyl(pentyl)amino]acetyl}amino)phenyl]ethynyl}benzamide480.6
1267N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[hexyl(methyl)amino]acetyl}amino)phenyl]ethynyl}benzamide494.6
1268N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[methyl(1-methylethyl)amino]acetyl}amino)-452.5
phenyl]ethynyl}benzamide
1269N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[methyl(2-methylpropyl)amino]acetyl}amino)-466.6
phenyl]ethynyl}benzamide
1270N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[methyl(pyridin-2-ylmethyl)amino]acetyl}amino)-501.6
phenyl]ethynyl}benzamide
12714-{[4-({[(3,4-dihydroxyphenyl)methyl]amino}methyl)phenyl]ethynyl}-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)-490.5
carbonyl]propyl}benzamide
12724-({2-[(aminoacetyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide411.4
12734-[(4-{[(2S)-2-aminopropanoyl]amino}phenyl)ethynyl]-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide425.5
1274N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-(diethylamino)phenyl]ethynyl}benzamide395.5
1275N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[4-(ethylamino)phenyl]buta-1,3-diynyl}benzamide391.4
1276N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[(4-{[(2-amino-2-oxoethyl)amino]methyl}phenyl)ethynyl]benzamide410.4
1277N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-({[1-(hydroxymethyl)-2-methylpropyl]amino}methyl)-439.5
phenyl]ethynyl}benzamide
1278N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-({4-[(pyridin-2-ylamino)methyl]phenyl}ethynyl)benzamide430.5
1279N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[3-(ethylamino)phenyl]buta-1,3-diynyl}benzamide391.4
1280N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[3-(ethylamino)phenyl]ethynyl}benzamide367.4
1281N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-(hydroxymethyl)phenyl]ethynyl}benzamide354.4
1282N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[3-(diethylamino)phenyl]ethynyl}benzamide395.5
1283N-{(1S,2S)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-{[4-(morpholin-4-ylmethyl)phenyl]ethynyl}benzamide438.5
12844-({4-[(dimethylamino)methyl]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide396.5
12854-[(4-aminophenyl)ethynyl]-N-{(1S,2S)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide354.4
12864-[4-(4-aminophenyl)buta-1,3-diynyl]-N-{(1S,2S)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide378.4
12871,1-dimethylethyl 4-(4-{4-[({(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}amino)carbonyl]phenyl}buta-1,3-diynyl)-478.5
phenylcarbamate
1288N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[4-({[1-(hydroxymethyl)-2-methylpropyl]amino}methyl)-463.5
phenyl]buta-1,3-diynyl}benzamide
1289N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-[4-(4-hydroxyphenyl)buta-1,3-diynyl]benzamide364.4
12904-[(2,4-difluorophenyl)ethynyl]-N-{(1S,2S)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide375.3
1291N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{4-[4-(morpholin-4-ylmethyl)phenyl]buta-1,3-diynyl}benzamide447.5
1292N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoehtyl]-4-{4-[4-(hydroxymethyl)phenyl]buta-1,3-diynyl}benzamide378.4
12934-({3-[(2-aminoethyl)amino]phenyl}ethynyl)-N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}benzamide397.4
1294N-[(1S)-1-(aminomethyl)-2-(hydroxyamino)-2-oxoethyl]-4-{[4-(trifluoromethyl)phenyl]ethynyl}benzamide392.3
1295(2S,3R)-3-hydroxy-2-({[4-(phenylethynyl)phenyl]carbonyl}amino)butanoic acid324.3
1296N-{(1S,2R)-2-{[(2-aminoethyl)amino]carbonyl}-2-hydroxypropyl)-4-(phenylethynyl)benzamide366.4
12971,1-dimethylethyl (2S)-3-(hydroxyamino)-3-oxo-2-({[4-(4-phenylbuta-1,3-diynyl)phenyl]carbonyl}amino)propylcarbamate448.5
1298N-{(1S,2R)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(4-{4-[(3-morpholin-4-ylpropyl)amino]phenyl}buta-505.6
1,3-diynyl)benzamide
1299N-[(1S,2R)-2-hydroxy-1-({[2-(methylthio)phenyl]amino}carbonyl)propyl]-4-(phenylethynyl)benzamide445.6
1300N-{(1S,2R)-2-hydroxy-1-[(pyridin-2-ylamino)carbonyl]propyl}-4-(phenylethynyl)benzamide400.4
1301N-((1S)-1-(aminomethyl)-2-{[(1,1-dimethylethyl)oxy]amino}-2-oxoethyl)-4-(4-phenylbuta-1,3-diynyl)benzamide404.5
1302N-{(1S,2S)-2-hydroxy-1-[(hydroxyamino)carbonyl]propyl}-4-(4-phenylbuta-1,3-diynyl)benzamide363.4
1303(2S,3R)-N,3-dihydroxy-2-({[4-(4-phenylbuta-1,3-diynyl)phenyl]methyl}amino)butanamide349.4
13041,1-dimethylethyl (2S)-3-(hydroxyamino)-3-oxo-2-({[4-(4-phenylbuta-1,3-diynyl)phenyl]methyl}amino)propylcarbamate434.5
1305(2S)-3-amino-N-hydroxy-2-({[4-(4-phenylbuta-1,3-diynyl)phenyl]methyl}amino)propanamide334.4
1306N-[(1S)-2-(hydroxyamino)-1-(hydroxymethyl)-2-oxoethyl]-4-[(trifluoromethyl)oxy]benzamide309.2
1307N-{2-hydroxy-1-[(hydroxyamino)carbonyl]-2-phenylethyl}-4-[(trifluoromethyl)oxy]benzamide385.3
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IPC · International Patent Classification
Section A — Human necessities
  • A61K31/44
  • A61K31/445
  • A61K31/497
  • A61K31/55
  • A61K31/535
  • A61K31/505
  • A61K31/38
Section C — Chemistry; metallurgy
  • C07D211/42
  • C07D207/32
  • C07D241/18
  • C07D211/62
  • C07D295/215
  • C07D285/00
  • C07C233/83
  • C07C311/08
  • C07D213/74
  • C07D213/54
  • C07D333/58
  • C07D295/155
  • C07C311/19
  • C07D231/12
  • C07C259/06
  • C07D241/04
  • C07D213/81
  • C07D401/04
  • C07C317/32
  • C07D213/56
  • C07C323/62
  • C07D217/26
  • C07D207/08
  • C07C337/08
  • C07D307/68
  • C07D453/00
  • C07D333/24
  • C07C255/24
  • C07D213/38
  • C07D295/192
  • C07D211/58
  • C07C381/00
  • C07D235/10
  • C07D215/48
  • C07D211/56
  • C07D207/14
  • C07D241/12
  • C07D263/34
  • C07C251/40
  • C07D295/135
  • C07D239/26
  • C07D333/32
  • C07D317/60
  • C07C275/26
  • C07D213/82
  • C07D295/13
  • C07C275/14
  • C07D311/24
  • C07D213/80
  • C07D211/26
  • C07C239/16
  • C07D333/22
  • C07D213/40
  • C07D235/14
  • C07D213/00
  • C07C255/44
  • C07C255/25
  • C07C255/57
  • C07C279/14
  • C07D233/54
  • C07D213/61
  • C07C323/25
  • C07D239/02
  • C07D333/20
  • C07D213/24
  • C07C275/16
  • C07C311/21
  • C07D413/04
  • C07D207/09
  • C07D317/68
  • C07C311/06
  • C07C335/08
  • C07C323/41
  • C07D285/01
  • C07D207/327
  • C07C323/60
  • C07D207/27
  • C07D239/10
  • C07D207/16
  • C07D239/42
  • C07D207/26
  • C07D333/36
USPC · US Patent Classification
546/309546/334514/252.1546/268.1544/360544/336514/256514/235.5546/345546/208514/217.4544/311544/131549/77514/357544/332514/352514/318514/438514/253.1514/272

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